REVIEW 1 major objections 8 minor 294 references
Quantum Nanophotonics with Energetic Particles:X-rays and Free Electrons
T0 review · 1 major / 8 minor · reviewed 2026-08-12 · deepseek-v4-flash
Pith's one-line read This review argues that nanophotonics—engineering light with nanoscale and atomic-scale structures—can be carried into the X-ray and free-electron regime, where it would make X-ray sources, optics, and detectors more compact and coherent…
desk verdict A solid, comprehensive review of a fast-moving niche; the field promise is real but the review leans on its own group's proposals and could be more critical. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
In the review's central picture, the load-bearing objects are the energy-momentum conservation relation for free-electron radiation in a periodic structure and the quantum recoil corrections that result: keeping the squared electron dispersion turns the classical frequency $\omega \approx v(k_z-g_z)$ into $\omega \approx v(k_z-g_z) - \frac{\hbar}{2\gamma m_e}(k_z-g_z)^2 - \frac{\hbar}{2\gamma m_e}(\mathbf{k}_\perp-\mathbf{g}_\perp)^2$. In the free-electron quantum optics arm of the review, the analogous load-bearing object is the electron energy ladder, acted on by the semiclassical scattering operator $S=\exp(gB-g^*B^\dagger)$ and by its quantum version $\exp(g_Q B a^\dagger - g_Q^* B^\dagger a)$; the ladder converts shaped electrons into quantum light states such as Fock, cat, and GKP states.
What would settle it
A decisive test would target the quantum-recoil spectrum in Smith-Purcell radiation with low-energy electrons: if the measured photon energy follows the classical dispersion $\omega \approx v(k_z-g_z)$ with no resolvable shift proportional to $\hbar$, the claim that quantum recoil is a general feature of free-electron radiation loses its experimental support. A null result in the chirped van der Waals heterostructure focusing experiment, meaning no diffraction-limited focal spot in the predicted X-ray emission, would falsify the flagship proposal for compact shaped X-ray sources.
Extended reading notes
Core claim
The paper's central claim, assembled from a broad review, is that the interaction of energetic free or quasi-free electrons with nanoscale and atomic-scale structures is not merely a classical radiation process but a quantum electrodynamic one whose signatures are already appearing in experiments. It identifies quantum recoil, the shift of emitted photon energies away from the classical dispersion relation because the radiating electron loses momentum as well as energy, as a measurable effect in parametric X-ray radiation and Smith-Purcell radiation, with transverse recoil predicted to shift and split spectra. It further argues that nanomaterial design, together with engineering of the electron wavefunction, can coherently enhance and shape X-ray emission, that free electrons shaped into energy combs can generate Fock states, optical cat states, and Gottesman-Kitaev-Preskill (GKP) states of light, and that high-harmonic generation in the single-atom or correlated-atom regime produces light with nonclassical statistics. The review concludes that these developments point toward compact tunable X-ray sources, quantum X-ray states, and nanophotonic X-ray optics including waveguides and lenses.
Load-bearing premise
The review's optimistic picture rests on the assumption that its flagship theoretical proposals—focused X-ray beams from chirped van der Waals heterostructures, measurable recoil shifts in emission spectra, and the quantum regimes of high-harmonic generation—will be realized experimentally with usable efficiency, even though the paper itself notes in Sections 2.2.1 and 5.3 that key experiments are pending or that current sources are insufficient.
Editorial extensions
If this is right
- Quantum recoil will have to be included in any accurate model of X-ray emission from free electrons passing through van der Waals materials or nanogratings; ignoring it misplaces spectral peaks by tens of electronvolts at soft-X-ray energies.
- Tunable coherent X-ray sources can be built on a tabletop by sending semi-relativistic electrons through van der Waals heterostructures, with the emission energy set by electron velocity and lattice periodicity.
- Shaped electron wavefunctions and energy-comb electrons can generate nonclassical light, including Fock states, cat states, and GKP states, with post-selection or strong coupling.
- X-ray waveguides can act as coherence filters that provide quasi-point, fully coherent illumination for nanoscale holography and phase-retrieval imaging in the 10 to 50 nm resolution range.
- Quantum X-ray imaging, including ghost imaging and correlation-enhanced detection, can improve sensitivity and resolution without increasing radiation dose.
Reading between the lines
- A testable consequence the review leaves implicit is that transverse quantum recoil should shift the angular distribution of emitted X-rays, not only their spectrum, so a position-sensitive measurement of the final electron momentum would directly expose the predicted electron-photon entanglement.
- The same nanophotonic platforms that enhance X-ray emission could be repurposed as photon-number-resolving detectors: if a single shaped electron can herald a Fock state, detecting the electron's energy loss becomes a natural non-destructive photon counter.
- If the chirped-heterostructure focusing proposal succeeds, the idea of 'source as optical element' may generalize to other aperiodic nanostructures, turning emission-pattern design into a computational inverse-design problem rather than a fabrication problem.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This review paper surveys the emerging field of quantum nanophotonics at X-ray and free-electron energies. It covers quantum recoil in spontaneous emission, coherent X-ray generation from nanostructures, shaping of electron wavefunctions, nanophotonic control of electron sources, high-harmonic generation with classical and quantum drivers, X-ray waveguide optics, and applications including Rabi oscillations, quantum imaging, and quantum information. The authors argue that nanophotonics and atomic-scale design can unlock new X-ray sources, quantum X-ray states, and advanced X-ray optics, and they support this with a broad collection of recent results from both experiment and theory.
Significance. If accepted as a guide to the field, this review is valuable: it brings together a wide range of recent developments that are normally scattered across optics, accelerator physics, condensed matter, and quantum information venues. The organizing structure is clear, the figures are informative, and the authors are careful in many places to distinguish established experiments from theoretical proposals — for example, they explicitly note that tunable X-ray emission from chirped van der Waals heterostructures awaits experimental demonstration (Sec. 2.2.1) and that quantum HHG effects require improved coupling and new collection methods (Sec. 5.3.7). The review also highlights reproducible resources, such as the freely available code for the waveguide Green's function (Sec. 6.5.2). The main weaknesses are presentation issues: numerous typographical errors, malformed citations, and an abstract that overstates the level of experimental support for the central promise.
major comments (1)
- [Abstract and Sec. 8 (Conclusion)] The abstract's claim that nanostructures and atomic design 'open the doors to unprecedented technologies' is stronger than the evidence assembled in the body. Section 2.2.1 (tunable X-ray emission from chirped van der Waals heterostructures) explicitly states 'These proposals await experimental demonstrations,' and Sec. 5.3.7 (quantum HHG outlook) concedes that observing predicted quantum effects 'requires' improved coupling and new XUV collection methods. I recommend qualifying the central claim — e.g., 'may open the doors' or 'have the potential to enable' — so that the abstract and conclusion distinguish experimentally demonstrated results from forward-looking theoretical proposals.
minor comments (8)
- [Sec. 2.1.3 and Sec. 5.3.1] 'Plank constant' appears in Sec. 2.1.3 (twice) and 'Plank constant' in Sec. 5.3.1; both should be 'Planck constant'.
- [Sec. 4.4 and Fig. 11 caption] 'Kapiza-Dirac' should be 'Kapitza-Dirac' in the text and in the figure caption.
- [Sec. 6.5.2] 'wavenumer' should be 'wavenumber' in the definition of the Green's function.
- [Sec. 2.2.1] The sentence 'A recent prototype in the experiment [87] [209].shows' is malformed; the citation [209] appears extraneous and the sentence should read 'A recent prototype experiment [87] shows...'.
- [Sec. 2.1.3] The citation block '[133,134,135,136]' for Compton's experiments appears to be incorrect; these numeric references should be verified and replaced with the appropriate historical and modern references.
- [Sec. 2.3.2] 'Possonian' should be 'Poissonian'; additional typos include 'well-establsihed' (Sec. 3.2), 'demostratred' (Sec. 3.1), and 'interal' (Sec. 6.2).
- [Sec. 6.3.3] 'multilayer Laue lenses (MZP)' — the acronym MZP is nonstandard; the usual abbreviation is MLL (multilayer Laue lens), so please update for consistency with the literature.
- [References] Several references are arXiv preprints (e.g., [505], [498], [239]); where peer-reviewed versions are now available, they should be updated in a review article.
Circularity Check
No circularity: the review's claims are literature-based, the equations shown are derived from stated conservation laws or QED Hamiltonians, and self-citations point to peer-reviewed results rather than to the present review's conclusions.
full rationale
This is a review article rather than a paper claiming a new derivation, so the main circularity tests do not apply in their usual form. The central claim that nanophotonics with X-rays and free electrons is promising is an editorial synthesis of a wide body of literature, not a result derived from its own assumptions. Where the paper does present equations, they are derived from explicitly stated physical principles: Eq. (3) follows from energy-momentum conservation with a quadratic electron dispersion, and Eq. (13) for quantum-light-driven HHG follows from a stated QED Hamiltonian and Husimi-function averaging. No fitted parameter is renamed as a prediction, and no claim is shown to reduce by construction to an earlier equation in the paper. The authors do cite many of their own prior papers, but these citations are to independently published, peer-reviewed theoretical and experimental results, and the review does not invoke a uniqueness theorem or self-citation chain to forbid alternatives. The passages noting that certain proposals 'await experimental demonstrations' weaken the forward-looking optimism, but that is a correctness/evidence concern, not a circularity concern. Accordingly, no circular steps are identified and the score is 0.
Assumptions & free parameters
assumptions (3)
- domain assumption Quantum electrodynamics provides the correct framework for free-electron-photon interactions.
- domain assumption The reviewed experimental results are correctly interpreted and reproduced.
- domain assumption Nanostructures can be fabricated with sufficient precision for X-ray applications.
Cite this review
Pith. "Pith review of Quantum Nanophotonics with Energetic Particles:X-rays and Free Electrons." pith.science (2026). https://pith.science/paper/C5CZZFBL
@misc{pith2026241109019,
author = {Pith},
title = {Pith review of: Quantum Nanophotonics with Energetic Particles:X-rays and Free Electrons},
year = {2026},
howpublished = {\url{https://pith.science/paper/C5CZZFBL}},
note = {Machine review of arXiv:2411.09019}
}
read the original abstract
Rapid progress in precision nanofabrication and atomic design over the past 50 years has ushered in a succession of transformative eras for molding the generation and flow of light. The use of nanoscale and atomic features to design light sources and optical elements-encapsulated by the term nanophotonics-has led to new fundamental science and innovative technologies across the entire electromagnetic spectrum, with substantial emphasis on the microwave to visible regimes. In this review, we pay special attention to the impact and potential of nanophotonics in a relatively exotic yet technologically disruptive regime: high-energy particles such as X-ray photons and free electrons-where nanostructures and atomic design open the doors to unprecedented technologies in quantum science and versatile X-ray sources and optics. As the practical generation of X-rays is intrinsically linked to the existence of energetic free or quasi-free-electrons, our review will also capture related phenomena and technologies that combine free electrons with nanophotonics, including free-electron-driven nanophotonics at other photon energies. In particular, we delve into the demonstration and study of quantum recoil in the X-ray regime, the study of nanomaterial design and free-electron wave shaping as means to enhance and control X-ray radiation, examine the free-electron generation enabled by nanophotonics, and analyze the high-harmonic generation by quasi-free electrons. We also discuss applications of quantum nanophotonics for X-rays and free electrons, including nanostructure waveguides for X-rays, photon pair enhanced X-ray imaging, mirrors, and lenses for X-rays, among others.
Reference graph
Works this paper leans on
-
[12]
https://doi.org/10.1016/j.elspec.2008.10.008
-
[168]
https://doi.org/10.3390/photonics8070269
-
[216]
https://doi.org/10.1107/S0909049511051983
-
[236]
D. Borodin, A. Schori, F. Zontone, S. Shwartz, X -ray photon pairs with highly suppressed background, Phys. Rev. A 94 (2016) 013843. https://doi.org/10.1103/PhysRevA.94.013843
-
[237]
L. Zhang, Z. Li, D. Liu, C. Wu, H. Xu, Z. Li, Entangled X-Ray Photon Pair Generation by Free -Electron Lasers, Phys. Rev. Lett. 131 (2023) 073601. https://doi.org/10.1103/PhysRevLett.131.073601
-
[238]
N.J. Hartley, D. Hodge, T. Buckway, R. Camacho, P. Chow, E. Christie, A. Gleason, S. Glenzer, A. Halavanau, A.M. Hardy, C. Recker, S. Sheehan, S. Shwartz, H. Tarvin, M. Ware, J. Wunschel, Y. Xiao, R.L. Sandberg, G. Walker, Confirming X -ray Parametric Down Conversion by Time-Energy Correlation, (2023). http://arxiv.org/abs/2309.13197 (accessed May 21, 2024)
arXiv 2023
-
[239]
J.C. Goodrich, R. Mahon, J. Hanrahan, M. Dziubelski, R.A. Abrahao, S. Karmakar, K.J. Gofron, T. Caswell, D. Allan, L. Berman, A. Fluerasu, A. Nomerotski, C. DaVià, S. McSweeney, Imaging of X -ray Pairs in a Spontaneous Parametric Down -Conversion Process, (2023). https://doi.org/10.48550/ARXIV.2310.13078
-
[240]
J.C. Goodrich, R. Mahon, J. Hanrahan, M. Dziubelski, R.A. Abrahao, S. Karmakar, K.J. Gofron, T.A. Caswell, D. Allan, L. Berman, A. Fluerasu, A. Nomerotski, C. DaVià, S. McSweeney, New Horizons in SPDC X-ray Imaging, in: CLEO 2024, Optica Publishing Group, Charlotte, North Carolina, 2024: p. FM4B.1. https://doi.org/10.1364/CLEO_FS.2024.FM4B.1
Show all 294 references
-
[241]
Gea-Banacloche, Quantum theory of the free -electron laser: Large gain, saturation, and photon statistics, Phys
J. Gea-Banacloche, Quantum theory of the free -electron laser: Large gain, saturation, and photon statistics, Phys. Rev. A 31 (1985) 1607–1621. https://doi.org/10.1103/PhysRevA.31.1607. 104
1985 doi
-
[242]
Becker, M.S
W. Becker, M.S. Zubairy, Photon statistics of a free -electron laser, Phys. Rev. A 25 (1982) 2200–2207. https://doi.org/10.1103/PhysRevA.25.2200
1982 doi
-
[243]
Becker, J.K
W. Becker, J.K. McIver, Photon statistics of the free- electron-laser startup, Phys. Rev. A 28 (1983) 1838–1840. https://doi.org/10.1103/PhysRevA.28.1838
1983 doi
-
[244]
Glauber, The Quantum Theory of Optical Coherence, Phys
R.J. Glauber, The Quantum Theory of Optical Coherence, Phys. Rev. 130 (1963) 2529–
1963
-
[245]
Benatti, S
F. Benatti, S. Olivares, G. Perosa, D. Bajoni, S.D. Mitri, R. Floreanini, L. Ratti, F. Parmigiani, Quantum state features of the FEL radiation from the occupation number statistics, Opt. Express 29 (2021) 40374–40396. https://doi.org/10.1364/OE.440198
2021 doi
-
[246]
Vartanyants, A
I.A. Vartanyants, A. Singer, A.P. Mancuso, O.M. Yefanov, A. Sakdinawat, Y. Liu, E. Bang, G.J. Williams, G. Cadenazzi, B. Abbey, H. Sinn, D. Attwood, K.A. Nugent, E. Weckert, T. Wang, D. Zhu, B. Wu, C. Graves, A. Scherz, J.J. Turner, W.F. Schlotter, M. Messerschmidt, J. Lüning,...
2011
-
[247]
Roling, B
S. Roling, B. Siemer, M. Wöstmann, H. Zacharias, R. Mitzner, A. Singer, K. Tiedtke, I.A. Vartanyants, Temporal and spatial coherence properties of free-electron-laser pulses in the extreme ultraviolet regime, Phys. Rev. ST Accel. Beams 14 (2011) 0807 01. https://doi.org/10.110...
2011 doi
-
[248]
Singer, F
A. Singer, F. Sorgenfrei, A.P. Mancuso, N. Gerasimova, O.M. Yefanov, J. Gulden, T. Gorniak, T. Senkbeil, A. Sakdinawat, Y. Liu, D. Attwood, S. Dziarzhytski, D.D. Mai, R. Treusch, E. Weckert, T. Salditt, A. Rosenhahn, W. Wurth, I.A. Vartanyants, Spati al and temporal coherence ...
2012 doi
-
[249]
Singer, U
A. Singer, U. Lorenz, F. Sorgenfrei, N. Gerasimova, J. Gulden, O.M. Yefanov, R.P. Kurta, A. Shabalin, R. Dronyak, R. Treusch, V. Kocharyan, E. Weckert, W. Wurth, I.A. Vartanyants, Hanbury Brown–Twiss Interferometry at a Free-Electron Laser, Phys. Rev. Lett. 111 (2013) 034802. ...
2013 doi
-
[250]
Singer, U
A. Singer, U. Lorenz, F. Sorgenfrei, N. Gerasimova, J. Gulden, O.M. Yefanov, R.P. Kurta, A. Shabalin, R. Dronyak, R. Treusch, V. Kocharyan, E. Weckert, W. Wurth, I.A. Vartanyants, Erratum: Hanbury Brown –Twiss Interferometry at a Free -Electron Laser [Phys. Rev. Lett. 111, 034...
2013 doi
-
[251]
Gorobtsov, G
O.Yu. Gorobtsov, G. Mercurio, G. Brenner, U. Lorenz, N. Gerasimova, R.P. Kurta, F. Hieke, P. Skopintsev, I. Zaluzhnyy, S. Lazarev, D. Dzhigaev, M. Rose, A. Singer, W. Wurth, I.A. Vartanyants, Statistical properties of a free -electron laser revealed b y Hanbury Brown–Twiss int...
2017 doi
-
[252]
Chen, J.M.J
T. Chen, J.M.J. Madey, Observation of Sub-Poisson Fluctuations in the Intensity of the Seventh Coherent Spontaneous Harmonic Emitted by a rf Linac Free -Electron Laser, Phys. Rev. Lett. 86 (2001) 5906–5909. https://doi.org/10.1103/PhysRevLett.86.5906
2001 doi
-
[253]
Becker, M.O
W. Becker, M.O. Scully, M.S. Zubairy, Generation of Squeezed Coherent States via a Free-Electron Laser, Phys. Rev. Lett. 48 (1982) 475–477. https://doi.org/10.1103/PhysRevLett.48.475
1982 doi
-
[254]
Gjaja, A
I. Gjaja, A. Bhattacharjee, Generation of squeezed radiation from a free -electron laser, Phys. Rev. A 36 (1987) 5486–5489. https://doi.org/10.1103/PhysRevA.36.5486. 105
1987 doi
-
[255]
Park, K.- J
J.-W. Park, K.- J. Kim, R. Lindberg, An investigation of possible non -standard photon statistics in a free-electron laser I: experiment, in: 39th Free Electron Laser Conf. FEL- 2019, 2019
2019
-
[256]
Park, K.- J
J.-W. Park, K.- J. Kim, R.R. Lindberg, An Investigation of Possible Non- Standard Photon Statistics in a Free- Electron Laser II: Theory, Proceedings of FEL2019 (2019) 165–167
2019
-
[257]
Kling, E
P. Kling, E. Giese, C.M. Carmesin, R. Sauerbrey, W.P. Schleich, High -gain quantum free-electron laser: Long-time dynamics and requirements, Phys. Rev. Research 3 (2021) 033232. https://doi.org/10.1103/PhysRevResearch.3.033232
2021 doi
-
[258]
Gorobtsov, G
O.Yu. Gorobtsov, G. Mercurio, F. Capotondi, P. Skopintsev, S. Lazarev, I.A. Zaluzhnyy, M.B. Danailov, M. Dell’Angela, M. Manfredda, E. Pedersoli, L. Giannessi, M. Kiskinova, K.C. Prince, W. Wurth, I.A. Vartanyants, Seeded X -ray free-electron laser generating radiation with la...
2018 doi
-
[259]
Gorobtsov, G
O.Yu. Gorobtsov, G. Mercurio, F. Capotondi, P. Skopintsev, S. Lazarev, I.A. Zaluzhnyy, M.B. Danailov, M. Dell’Angela, M. Manfredda, E. Pedersoli, L. Giannessi, M. Kiskinova, K.C. Prince, W. Wurth, I.A. Vartanyants, Publisher Correction: Seeded X - ray free-electron laser gener...
2019 doi
-
[260]
Heimerl, A
J. Heimerl, A. Mikhaylov, S. Meier, H. Höllerer, I. Kaminer, M. Chekhova, P. Hommelhoff, Multiphoton electron emission with non-classical light, Nat. Phys. (2024). https://doi.org/10.1038/s41567-024-02472-6
2024 doi
-
[261]
Even Tzur, O
M. Even Tzur, O. Cohen, Motion of charged particles in bright squeezed vacuum, Light Sci. Appl. 13 (2024) 41. https://doi.org/10.1038/s41377-024-01381-w
2024 doi
-
[262]
Kozák, N
M. Kozák, N. Schönenberger, P. Hommelhoff, Ponderomotive Generation and Detection of Attosecond Free -Electron Pulse Trains, Phys. Rev. Lett. 120 (2018) 103203. https://doi.org/10.1103/PhysRevLett.120.103203
2018 doi
-
[263]
Vanacore, I
G.M. Vanacore, I. Madan, G. Berruto, K. Wang, E. Pomarico, R.J. Lamb, D. McGrouther, I. Kaminer, B. Barwick, F.J. García De Abajo, F. Carbone, Attosecond coherent control of free -electron wave functions using semi -infinite light fields, Nat Commun 9 (2018) 2694. https://doi....
2018 doi
-
[264]
Vanacore, G
G.M. Vanacore, G. Berruto, I. Madan, E. Pomarico, P. Biagioni, R.J. Lamb, D. McGrouther, O. Reinhardt, I. Kaminer, B. Barwick, H. Larocque, V. Grillo, E. Karimi, F.J. García De Abajo, F. Carbone, Ultrafast generation and control of an electron vortex beam via chiral plasmonic ...
2019 doi
-
[265]
Reinhardt, I
O. Reinhardt, I. Kaminer, Theory of Shaping Electron Wavepackets with Light, ACS Photonics 7 (2020) 2859–2870. https://doi.org/10.1021/acsphotonics.0c01133
2020 doi
-
[266]
Vanacore, I
G.M. Vanacore, I. Madan, F. Carbone, Spatio-temporal shaping of a free-electron wave function via coherent light –electron interaction, Riv. Nuovo Cim. 43 (2020) 567–597. https://doi.org/10.1007/s40766-020-00012-5
2020 doi
-
[267]
Yalunin, A
S.V. Yalunin, A. Feist, C. Ropers, Tailored high-contrast attosecond electron pulses for coherent excitation and scattering, Phys. Rev. Research 3 (2021) L032036. https://doi.org/10.1103/PhysRevResearch.3.L032036
2021 doi
-
[268]
Madan, V
I. Madan, V. Leccese, A. Mazur, F. Barantani, T. LaGrange, A. Sapozhnik, P.M. Tengdin, S. Gargiulo, E. Rotunno, J.-C. Olaya, I. Kaminer, V. Grillo, F.J.G. De Abajo, F. Carbone, G.M. Vanacore, Ultrafast Transverse Modulation of Free Electrons by Interaction with Shaped Optical ...
2022 doi
-
[269]
Tsesses, R
S. Tsesses, R. Dahan, K. Wang, T. Bucher, K. Cohen, O. Reinhardt, G. Bartal, I. Kaminer, Tunable photon-induced spatial modulation of free electrons, Nat. Mater. 22 (2023) 345–352. https://doi.org/10.1038/s41563-022-01449-1
2023 doi
-
[270]
Gorlach, A
A. Gorlach, A. Karnieli, R. Dahan, E. Cohen, A. Pe’er, I. Kaminer, Ultrafast non- destructive measurement of the quantum state of light using free electrons, (2020). https://doi.org/10.48550/ARXIV.2012.12069
2020 doi
-
[271]
Varkentina, Y
N. Varkentina, Y. Auad, S.Y. Woo, A. Zobelli, L. Bocher, J.-D. Blazit, X. Li, M. Tencé, K. Watanabe, T. Taniguchi, O. Stéphan, M. Kociak, L.H.G. Tizei, Cathodoluminescence excitation spectroscopy: Nanoscale imaging of excitation pathways, Sci. Adv. 8 (2022) eabq4947. https://d...
2022 doi
-
[272]
X. Chen, K. Zollner, C. Moulsdale, V.I. Fal’ko, A. Knothe, Semimetallic and semiconducting graphene- h BN multilayers with parallel or reverse stacking, Phys. Rev. B 107 (2023) 125402. https://doi.org/10.1103/PhysRevB.107.125402
2023 doi
- [273]
-
[274]
Zhang, F
L. Zhang, F. Monticone, O.D. Miller, All electromagnetic scattering bodies are matrix- valued oscillators, Nat. Commun. 14 (2023) 7724. https://doi.org/10.1038/s41467- 023- 43221-2
2023 doi
-
[275]
D’Mello, R
Y. D’Mello, R. Dahan, S. Bernal, X. Shi, I. Kaminer, D.V. Plant, Efficient coupling between free electrons and the supermode of a silicon slot waveguide, Opt. Express 31 (2023) 19443. https://doi.org/10.1364/OE.491452
2023 doi
-
[276]
Seidling, F.D.F
M. Seidling, F.D.F. Schmidt -Kaler, R. Zimmermann, J.W. Simonaitis, P.D. Keathley, K.K. Berggren, P. Hommelhoff, Resonating Electrostatically Guided Electrons, Phys. Rev. Lett. 132 (2024) 255001. https://doi.org/10.1103/PhysRevLett.132.255001
2024 doi
-
[277]
Fink, Time reversal of ultrasonic fields
M. Fink, Time reversal of ultrasonic fields. I. Basic principles, IEEE Trans. Ultrason., Ferroelect., Freq. Contr. 39 (1992) 555–566. https://doi.org/10.1109/58.156174
1992 doi
-
[278]
Grier, A revolution in optical manipulation, Nature 424 (2003) 810–816
D.G. Grier, A revolution in optical manipulation, Nature 424 (2003) 810–816. https://doi.org/10.1038/nature01935
2003 doi
-
[280]
Guzzinati, A
G. Guzzinati, A. Béché, H. Lourenço- Martins, J. Martin, M. Kociak, J. Verbeeck, Probing the symmetry of the potential of localized surface plasmon resonances with phase-shaped electron beams, Nat Commun 8 (2017) 14999. https://doi.org/10.1038/ncomms14999
2017 doi
-
[281]
Tavabi, P
A.H. Tavabi, P. Rosi, E. Rotunno, A. Roncaglia, L. Belsito, S. Frabboni, G. Pozzi, G.C. Gazzadi, P. -H. Lu, R. Nijland, M. Ghosh, P. Tiemeijer, E. Karimi, R.E. Dunin- Borkowski, V. Grillo, Experimental Demonstration of an Electrostatic Orbital Angular Momentum Sorter for Elect...
2021 doi
-
[282]
Shiloh, Y
R. Shiloh, Y. Lereah, Y. Lilach, A. Arie, Sculpturing the electron wave function using nanoscale phase masks, Ultramicroscopy 144 (2014) 26–31. https://doi.org/10.1016/j.ultramic.2014.04.007
2014 doi
-
[283]
Bliokh, Y.P
K.Yu. Bliokh, Y.P. Bliokh, S. Savel’ev, F. Nori, Semiclassical Dynamics of Electron Wave Packet States with Phase Vortices, Phys. Rev. Lett. 99 (2007) 190404. https://doi.org/10.1103/PhysRevLett.99.190404
2007 doi
-
[284]
Grillo, E
V. Grillo, E. Karimi, G.C. Gazzadi, S. Frabboni, M.R. Dennis, R.W. Boyd, Generation of Nondiffracting Electron Bessel Beams, Phys. Rev. X 4 (2014) 011013. https://doi.org/10.1103/PhysRevX.4.011013. 107
2014 doi
-
[285]
Voloch-Bloch, Y
N. Voloch-Bloch, Y. Lereah, Y. Lilach, A. Gover, A. Arie, Generation of electron Airy beams, Nature 494 (2013) 331–335. https://doi.org/10.1038/nature11840
2013 doi
-
[286]
Kaminer, J
I. Kaminer, J. Nemirovsky, M. Rechtsman, R. Bekenstein, M. Segev, Self -accelerating Dirac particles and prolonging the lifetime of relativistic fermions, Nat. Phys. 11 (2015) 261–267. https://doi.org/10.1038/nphys3196
2015 doi
-
[287]
Schwartz, J.J
O. Schwartz, J.J. Axelrod, S.L. Campbell, C. Turnbaugh, R.M. Glaeser, H. Müller, Laser phase plate for transmission electron microscopy, Nat. Methods 16 (2019) 1016–1020. https://doi.org/10.1038/s41592-019-0552-2
2019 doi
-
[288]
Chirita Mihaila, P
M.C. Chirita Mihaila, P. Weber, M. Schneller, L. Grandits, S. Nimmrichter, T. Juffmann, Transverse Electron -Beam Shaping with Light, Phys. Rev. X 12 (2022) 031043. https://doi.org/10.1103/PhysRevX.12.031043
2022 doi
-
[289]
Feist, S.V
A. Feist, S.V. Yalunin, S. Schäfer, C. Ropers, High- purity free -electron momentum states prepared by three-dimensional optical phase modulation, Phys. Rev. Res. 2 (2020) 43227. https://doi.org/10.1103/PhysRevResearch.2.043227
2020 doi
-
[290]
Madan, G.M
I. Madan, G.M. Vanacore, E. Pomarico, G. Berruto, R.J. Lamb, D. McGrouther, T.T.A. Lummen, T. Latychevskaia, F.J. García de Abajo, F. Carbone, Holographic imaging of electromagnetic fields via electron-light quantum interference, Sci. Adv. 5 (2019) 8358. https://doi.org/10.112...
2019 doi
-
[291]
García de Abajo, B
F.J. García de Abajo, B. Barwick, F. Carbone, Electron diffraction by plasmon waves, Phys. Rev. B 94 (2016) 041404. https://doi.org/10.1103/PhysRevB.94.041404
2016 doi
-
[293]
Remez, A
R. Remez, A. Karnieli, S. Trajtenberg-Mills, N. Shapira, I. Kaminer, Y. Lereah, A. Arie, Observing the Quantum Wave Nature of Free Electrons through Spontaneous Emission, Phys. Rev. Lett. 123 (2019) 060401. https://doi.org/10.1103/PhysRevLett.123.060401
2019 doi
-
[294]
Ritchie, A
R.H. Ritchie, A. Howie, Inelastic scattering probabilities in scanning transmission electron microscopy, Philos. Mag. A. 58 (1988) 753–767. https://doi.org/10.1080/01418618808209951
1988 doi
-
[295]
Y. Pan, A. Gover, Spontaneous and stimulated emissions of a preformed quantum free- electron wave function, Phys. Rev. A 99 (2019) 052107. https://doi.org/10.1103/PhysRevA.99.052107
2019 doi
-
[296]
Gover, Y
A. Gover, Y. Pan, Dimension -dependent stimulated radiative interaction of a single electron quantum wavepacket, Phys. Lett. A. 382 (2018) 1550–1555. https://doi.org/10.1016/j.physleta.2018.03.049
2018 doi
-
[297]
Y. Pan, A. Gover, Spontaneous and stimulated radiative emission of modulated free - electron quantum wavepackets—semiclassical analysis, J. Phys. Commun. (2018). https://doi.org/10.1088/2399-6528/aae2ec
2018 doi
-
[298]
Karlovets, A.M
D.V. Karlovets, A.M. Pupasov- Maksimov, Nonlinear quantum effects in electromagnetic radiation of a vortex electron, Phys. Rev. A 103 (2021) 12214. https://doi.org/10.1103/PhysRevA.103.012214
2021 doi
-
[299]
Karnieli, R
A. Karnieli, R. Remez, I. Kaminer, A. Arie, Comment on ``Nonlinear quantum effects in electromagnetic radiation of a vortex electron’’, Phys. Rev. A 105 (2022) 36202. https://doi.org/10.1103/PhysRevA.105.036202
2022 doi
-
[300]
Karlovets, A.M
D.V. Karlovets, A.M. Pupasov-Maksimov, Reply to ``Comment on `Nonlinear quantum effects in electromagnetic radiation of a vortex electron’ ’ ’, Phys. Rev. A 105 (2022) 36203. https://doi.org/10.1103/PhysRevA.105.036203
2022 doi
-
[301]
J. Lim, S. Kumar, Y.S. Ang, L.K. Ang, L.J. Wong, Quantum Interference between Fundamentally Different Processes Is Enabled by Shaped Input Wavefunctions, Advanced Science 10 (2023) 2205750. https://doi.org/10.1002/advs.202205750. 108
2023 doi
-
[302]
O. Kfir, V. Di Giulio, F.J. García de Abajo, C. Ropers, Optical coherence transfer mediated by free electrons, Sci. Adv. 7 (2021) eabf6380. https://doi.org/10.1126/sciadv.abf6380
2021 doi
-
[303]
Karnieli, N
A. Karnieli, N. Rivera, A. Arie, I. Kaminer, Superradiance and Subradiance due to Quantum Interference of Entangled Free Electrons, Phys. Rev. Lett. 127 (2021) 060403. https://doi.org/10.1103/PhysRevLett.127.060403
2021 doi
-
[304]
Ruimy, A
R. Ruimy, A. Gorlach, G. Baranes, I. Kaminer, Superradiant Electron Energy Loss Spectroscopy, Nano Lett. 23 (2023) 779–787. https://doi.org/10.1021/acs.nanolett.2c03396
2023 doi
-
[305]
Gover, R
A. Gover, R. Ianconescu, A. Friedman, C. Emma, N. Sudar, P. Musumeci, C. Pellegrini, Superradiant and stimulated -superradiant emission of bunched electron beams, Rev. Mod. Phys. 91 (2019) 035003. https://doi.org/10.1103/RevModPhys.91.035003
2019 doi
- [306]
-
[307]
Gorlach, O
A. Gorlach, O. Reinhardt, A. Pizzi, R. Ruimy, G. Baranes, N. Rivera, I. Kaminer, Double-superradiant cathodoluminescence, Phys. Rev. A 109 (2024) 023722. https://doi.org/10.1103/PhysRevA.109.023722
2024 doi
-
[308]
G. Fève, A. Mahé, J. -M. Berroir, T. Kontos, B. Plaçais, D.C. Glattli, A. Cavanna, B. Etienne, Y. Jin, An On- Demand Coherent Single-Electron Source, Science 316 (2007) 1169–1172. https://doi.org/10.1126/science.1141243
2007 doi
-
[309]
Bocquillon, V
E. Bocquillon, V. Freulon, J.-M. Berroir, P. Degiovanni, B. Plaçais, A. Cavanna, Y. Jin, G. Fève, Coherence and Indistinguishability of Single Electrons Emitted by Independent Sources, Science 339 (2013) 1054–1057. https://doi.org/10.1126/science.1232572
2013 doi
-
[310]
Ropers, D.R
C. Ropers, D.R. Solli, C.P. Schulz, C. Lienau, T. Elsaesser, Localized Multiphoton Emission of Femtosecond Electron Pulses from Metal Nanotips, Phys. Rev. Lett. 98 (2007) 43907. https://doi.org/10.1103/PhysRevLett.98.043907
2007 doi
-
[311]
H. Kim, Y. Hasegawa, Site -Dependent Evolution of Electrical Conductance from Tunneling to Atomic Point Contact, Phys. Rev. Lett. 114 (2015) 206801. https://doi.org/10.1103/PhysRevLett.114.206801
2015 doi
-
[312]
Krüger, C
M. Krüger, C. Lemell, G. Wachter, J. Burgdörfer, P. Hommelhoff, Attosecond physics phenomena at nanometric tips, J. Phys. B. 51 (2018) 172001. https://doi.org/10.1088/1361-6455/aac6ac
2018 doi
-
[313]
Ciappina, J.A
M.F. Ciappina, J.A. Pérez -Hernández, A.S. Landsman, W.A. Okell, S. Zherebtsov, B. Förg, J. Schötz, L. Seiffert, T. Fennel, T. Shaaran, T. Zimmermann, A. Chacón, R. Guichard, A. Zaïr, J.W.G. Tisch, J.P. Marangos, T. Witting, A. Braun, S.A. Maier, L. Roso, M. Krüger, P. Hommelh...
2017 doi
-
[314]
Putnam, R.G
W.P. Putnam, R.G. Hobbs, P.D. Keathley, K.K. Berggren, F.X. Kärtner, Optical -field- controlled photoemission from plasmonic nanoparticles, Nat. Phys. 13 (2017) 335–339. https://doi.org/10.1038/nphys3978
2017 doi
-
[315]
C. Li, X. Zhou, F. Zhai, Z. Li, F. Yao, R. Qiao, K. Chen, M.T. Cole, D. Yu, Z. Sun, K. Liu, Q. Dai, Carbon Nanotubes as an Ultrafast Emitter with a Narrow Energy Spread at Optical Frequency, Adv. Mater. 29 (2017) 1701580. https://doi.org/10.1002/adma.201701580
2017 doi
-
[316]
Corkum, F
P.B. Corkum, F. Krausz, Attosecond science, Nat. Phys. 3 (2007) 381–387. https://doi.org/10.1038/nphys620. 109
2007 doi
-
[317]
Baum, On the physics of ultrashort single -electron pulses for time -resolved microscopy and diffraction, Chem
P. Baum, On the physics of ultrashort single -electron pulses for time -resolved microscopy and diffraction, Chem. Phys. 423 (2013) 55–61. https://doi.org/10.1016/j.chemphys.2013.06.012
2013 doi
-
[318]
Houdellier, G.M
F. Houdellier, G.M. Caruso, S. Weber, M. Kociak, A. Arbouet, Development of a high brightness ultrafast Transmission Electron Microscope based on a laser-driven cold field emission source, Ultramicroscopy 186 (2018) 128–138. https://doi.org/10.1016/j.ultramic.2017.12.015
2018 doi
-
[319]
Meier, T
S. Meier, T. Higuchi, M. Nutz, A. Högele, P. Hommelhoff, High spatial coherence in multiphoton-photoemitted electron beams, Appl. Phys. Lett 113 (2018) 143101. https://doi.org/10.1063/1.5045282
2018 doi
-
[320]
Ehberger, J
D. Ehberger, J. Hammer, M. Eisele, M. Krüger, J. Noe, A. Högele, P. Hommelhoff, Highly Coherent Electron Beam from a Laser- Triggered Tungsten Needle Tip, Phys. Rev. Lett. 114 (2015) 227601. https://doi.org/10.1103/PhysRevLett.114.227601
2015 doi
-
[321]
Feist, N
A. Feist, N. Bach, N. Rubiano da Silva, T. Danz, M. Möller, K.E. Priebe, T. Domröse, J.G. Gatzmann, S. Rost, J. Schauss, S. Strauch, R. Bormann, M. Sivis, S. Schäfer, C. Ropers, Ultrafast transmission electron microscopy using a laser -driven field emitter: Femtosecond resolut...
2017 doi
-
[322]
Brückner, C
L. Brückner, C. Nauk, P. Dienstbier, C. Gerner, B. Löhrl, T. Paschen, P. Hommelhoff, A Gold Needle Tip Array Ultrafast Electron Source with High Beam Quality, Nano Lett. 24 (2024) 5018–5023. https://doi.org/10.1021/acs.nanolett.4c00870
2024 doi
-
[323]
Piglosiewicz, S
B. Piglosiewicz, S. Schmidt, D.J. Park, J. Vogelsang, P. Groß, C. Manzoni, P. Farinello, G. Cerullo, C. Lienau, Carrier-envelope phase effects on the strong-field photoemission of electrons from metallic nanostructures, Nat. Photonics 8 (2014) 37 –42. https://doi.org/10.1038/n...
2014 doi
-
[324]
Wimmer, G
L. Wimmer, G. Herink, D.R. Solli, S.V. Yalunin, K.E. Echternkamp, C. Ropers, Terahertz control of nanotip photoemission, Nat. Phys. 10 (2014) 432–436. https://doi.org/10.1038/nphys2974
2014 doi
-
[326]
Hommelhoff, M
P. Hommelhoff, M. Kling, Attosecond nanophysics: From basic science to applications, John Wiley & Sons, 2015
2015
-
[327]
Dombi, Z
P. Dombi, Z. Pápa, J. Vogelsang, S.V. Yalunin, M. Sivis, G. Herink, S. Schäfer, P. Groß, C. Ropers, C. Lienau, Strong- field nano- optics, Rev. Mod. Phys. 92 (2020) 25003. https://doi.org/10.1103/RevModPhys.92.025003
2020 doi
-
[328]
Kirchner, A
F.O. Kirchner, A. Gliserin, F. Krausz, P. Baum, Laser streaking of free electrons at 25 keV, Nat. Photonics (2014). https://doi.org/10.1038/nphoton.2013.315
2014 doi
-
[329]
K.T. Kim, C. Zhang, T. Ruchon, J.- F. Hergott, T. Auguste, D.M. Villeneuve, P.B. Corkum, F. Quéré, Photonic streaking of attosecond pulse trains, Nat. Photonics 7 (2013) 651–656. https://doi.org/10.1038/nphoton.2013.170
2013 doi
-
[330]
M. Yu, K. Liu, M. Li, J. Yan, C. Cao, J. Tan, J. Liang, K. Guo, W. Cao, P. Lan, Q. Zhang, Y. Zhou, P. Lu, Full experimental determination of tunneling time with attosecond-scale streaking method, Light Sci. Appl. 11 (2022) 215. https://doi.org/10.1038/s41377- 022- 00911-8
2022 doi
-
[331]
Z. Chen, B. Zhang, Y. Pan, M. Krüger, Quantum wave function reconstruction by free- electron spectral shearing interferometry, Sci. Adv. 9 (2023) eadg8516. https://doi.org/10.1126/sciadv.adg8516. 110
2023 doi
-
[332]
Morimoto, P
Y. Morimoto, P. Baum, Single -Cycle Optical Control of Beam Electrons, Phys. Rev. Lett. 125 (2020) 193202. https://doi.org/10.1103/PhysRevLett.125.193202
2020 doi
-
[333]
Keramati, W
S. Keramati, W. Brunner, T.J. Gay, H. Batelaan, Non- Poissonian Ultrashort Nanoscale Electron Pulses, Phys. Rev. Lett. 127 (2021) 180602. https://doi.org/10.1103/PhysRevLett.127.180602
2021 doi
-
[334]
Kiesel, A
H. Kiesel, A. Renz, F. Hasselbach, Observation of Hanbury Brown–Twiss anticorrelations for free electrons, Nature 418 (2002) 392–394. https://doi.org/10.1038/nature00911
2002 doi
-
[335]
Meier, P
S. Meier, P. Hommelhoff, Coulomb Interactions and the Spatial Coherence of Femtosecond Nanometric Electron Pulses, ACS Photonics 9 (2022) 3083–3088. https://doi.org/10.1021/acsphotonics.2c00839
2022 doi
-
[336]
N. Bach, T. Domröse, A. Feist, T. Rittmann, S. Strauch, C. Ropers, S. Schäfer, Coulomb interactions in high-coherence femtosecond electron pulses from tip emitters, Structural Dynamics 6 (2019) 14301. https://doi.org/10.1063/1.5066093
2019 doi
-
[337]
Meier, J
S. Meier, J. Heimerl, P. Hommelhoff, Correlations in strong -field-emitted ultrashort electron pulses from metal needle tips, Laser Phys. Lett. 21 (2024) 45301. https://doi.org/10.1088/1612-202X/ad2b5a
2024 doi
-
[338]
Mandel, E
L. Mandel, E. Wolf, Optical Coherence and Quantum Optics, 1st ed., Cambridge University Press, 1995. https://doi.org/10.1017/CBO9781139644105
1995 doi
-
[339]
Simonaitis, P.D
J.W. Simonaitis, P.D. Keathley, Twin experiments reveal twin electron dynamics, Nat. Phys. 19 (2023) 1382–1383. https://doi.org/10.1038/s41567-023-02066-8
2023 doi
-
[340]
Yanagisawa, M
H. Yanagisawa, M. Bohn, H. Kitoh- Nishioka, F. Goschin, M.F. Kling, Light -Induced Subnanometric Modulation of a Single-Molecule Electron Source, Phys. Rev. Lett. 130 (2023) 106204. https://doi.org/10.1103/PhysRevLett.130.106204
2023 doi
-
[341]
Polman, M
A. Polman, M. Kociak, F.J. García de Abajo, Electron -beam spectroscopy for nanophotonics, Nat. Mater. 18 (2019) 1158–1171. https://doi.org/10.1038/s41563- 019- 0409-1
2019 doi
-
[342]
Kapitza, P.A.M
P.L. Kapitza, P.A.M. Dirac, The reflection of electrons from standing light waves, Mathematical Proceedings of the Cambridge Philosophical Society 29 (1933) 297–300. https://doi.org/DOI: 10.1017/S0305004100011105
1933 doi
-
[343]
Batelaan, Colloquium: Illuminating the Kapitza -Dirac effect with electron matter optics, Rev
H. Batelaan, Colloquium: Illuminating the Kapitza -Dirac effect with electron matter optics, Rev. Mod. Phys. 79 (2007) 929–941. https://doi.org/10.1103/RevModPhys.79.929
2007 doi
-
[344]
Yang, O.F
D.-S. Yang, O.F. Mohammed, A.H. Zewail, Scanning ultrafast electron microscopy, Proceedings of the National Academy of Sciences 107 (2010) 14993–14998. https://doi.org/10.1073/pnas.1009321107
2010 doi
-
[345]
Piazza, T.T.A
L. Piazza, T.T.A. Lummen, E. Quiñonez, Y. Murooka, B.W. Reed, B. Barwick, F. Carbone, Simultaneous observation of the quantization and the interference pattern of a plasmonic near -field, Nat. Commun. 6 (2015) 6407. https://doi.org/10.1038/ncomms7407
2015 doi
-
[346]
Kurman, R
Y. Kurman, R. Dahan, H.H. Sheinfux, K. Wang, M. Yannai, Y. Adiv, O. Reinhardt, L.H.G. Tizei, S.Y. Woo, J. Li, J.H. Edgar, M. Kociak, F.H.L. Koppens, I. Kaminer, Spatiotemporal imaging of 2D polariton wave packet dynamics using free electrons, Science 372 (2021) 1181–1186. http...
2021 doi
-
[347]
Yannai, R
M. Yannai, R. Dahan, A. Gorlach, Y. Adiv, K. Wang, I. Madan, S. Gargiulo, F. Barantani, E.J.C. Dias, G.M. Vanacore, N. Rivera, F. Carbone, F.J. García de Abajo, I. Kaminer, Ultrafast Electron Microscopy of Nanoscale Charge Dynamics in Semiconductors, ACS Nano 17 (2023) 3645–36...
2023 doi
-
[348]
Yannai, Y
M. Yannai, Y. Adiv, R. Dahan, K. Wang, A. Gorlach, N. Rivera, T. Fishman, M. Krüger, I. Kaminer, Lossless Monochromator in an Ultrafast Electron Microscope Using Near - Field THz Radiation, Phys. Rev. Lett. 131 (2023) 145002. https://doi.org/10.1103/PhysRevLett.131.145002
2023 doi
-
[349]
Echternkamp, A
K.E. Echternkamp, A. Feist, S. Schäfer, C. Ropers, Ramsey -type phase control of free- electron beams, Nat. Phys. 12 (2016) 1000–1004. https://doi.org/10.1038/nphys3844
2016 doi
-
[350]
Rotenberg, L
N. Rotenberg, L. Kuipers, Mapping nanoscale light fields, Nat. Photonics 8 (2014) 919–
2014
-
[351]
J. Li, Y. Fang, Y. Liu, Topologically Protected Strong-Interaction of Photonics with Free Electrons, Phys. Rev. Lett. 132 (2024) 073801. https://doi.org/10.1103/PhysRevLett.132.073801
2024 doi
-
[352]
Morimoto, Attosecond movies of nano-optical fields, Nat
Y. Morimoto, Attosecond movies of nano-optical fields, Nat. Photonics 17 (2023) 736–
2023
-
[353]
Nabben, J
D. Nabben, J. Kuttruff, L. Stolz, A. Ryabov, P. Baum, Attosecond electron microscopy of sub- cycle optical dynamics, Nature 619 (2023) 63–67. https://doi.org/10.1038/s41586-023-06074-9
2023 doi
-
[354]
D. Hui, H. Alqattan, M. Sennary, N.V. Golubev, M.Th. Hassan, Attosecond electron microscopy and diffraction, Sci. Adv. 10 (2024) eadp5805. https://doi.org/10.1126/sciadv.adp5805
2024 doi
-
[355]
Bucher, R
T. Bucher, R. Ruimy, S. Tsesses, R. Dahan, G. Bartal, G.M. Vanacore, I. Kaminer, Free- electron Ramsey -type interferometry for enhanced amplitude and phase imaging of nearfields, Sci. Adv. 9 (2023) eadi5729. https://doi.org/10.1126/sciadv.adi5729
2023 doi
-
[356]
Gaida, H
J.H. Gaida, H. Lourenço-Martins, M. Sivis, T. Rittmann, A. Feist, F.J. García de Abajo, C. Ropers, Attosecond electron microscopy by free -electron homodyne detection, Nat. Photonics 18 (2024) 509–515. https://doi.org/10.1038/s41566-024-01380-8
2024 doi
-
[357]
Bucher, H
T. Bucher, H. Nahari, H. Herzig Sheinfux, R. Ruimy, A. Niedermayr, R. Dahan, Q. Yan, Y. Adiv, M. Yannai, J. Chen, Y. Kurman, S.T. Park, D.J. Masiel, E. Janzen, J.H. Edgar, F. Carbone, G. Bartal, S. Tsesses, F.H.L. Koppens, G.M. Vanacore, I. Kaminer, Coherently amplified ultraf...
2024 doi
-
[358]
Zhang, D
B. Zhang, D. Ran, R. Ianconescu, A. Friedman, J. Scheuer, A. Yariv, A. Gover, Quantum Wave-Particle Duality in Free -Electron–Bound-Electron Interaction, Phys. Rev. Lett. 126 (2021) 244801. https://doi.org/10.1103/PhysRevLett.126.244801
2021 doi
-
[359]
Karnieli, S
A. Karnieli, S. Tsesses, R. Yu, N. Rivera, Z. Zhao, A. Arie, S. Fan, I. Kaminer, Quantum sensing of strongly coupled light-matter systems using free electrons, Sci. Adv. 9 (2023) eadd2349. https://doi.org/10.1126/sciadv.add2349
2023 doi
-
[360]
Burnett, H.A
N.H. Burnett, H.A. Baldis, M.C. Richardson, G.D. Enright, Harmonic generation in CO2 laser target interaction, Applied Physics Letters 31 (1977) 172–174. https://doi.org/10.1063/1.89628
1977 doi
-
[361]
McPherson, G
A. McPherson, G. Gibson, H. Jara, U. Johann, T.S. Luk, I.A. McIntyre, K. Boyer, C.K. Rhodes, Studies of multiphoton production of vacuum -ultraviolet radiation in the rare gases, J. Opt. Soc. Am. B 4 (1987) 595. https://doi.org/10.1364/JOSAB.4.000595
1987 doi
-
[362]
Ferray, A
M. Ferray, A. L’Huillier, X.F. Li, L.A. Lompre, G. Mainfray, C. Manus, Multiple - harmonic conversion of 1064 nm radiation in rare gases, J. Phys. B: At. Mol. Opt. Phys. 21 (1988) L31–L35. https://doi.org/10.1088/0953-4075/21/3/001
1988 doi
-
[363]
Antoine, A
P. Antoine, A. L’Huillier, M. Lewenstein, Attosecond Pulse Trains Using High–Order Harmonics, Phys. Rev. Lett. 77 (1996) 1234 –1237. https://doi.org/10.1103/PhysRevLett.77.1234. 112
1996 doi
-
[364]
Papadogiannis, B
N.A. Papadogiannis, B. Witzel, C. Kalpouzos, D. Charalambidis, Observation of Attosecond Light Localization in Higher Order Harmonic Generation, Phys. Rev. Lett. 83 (1999) 4289–4292. https://doi.org/10.1103/PhysRevLett.83.4289
1999 doi
-
[365]
Hentschel, R
M. Hentschel, R. Kienberger, Ch. Spielmann, G.A. Reider, N. Milosevic, T. Brabec, P. Corkum, U. Heinzmann, M. Drescher, F. Krausz, Attosecond metrology, Nature 414 (2001) 509–513. https://doi.org/10.1038/35107000
2001 doi
-
[366]
Paul, E.S
P.M. Paul, E.S. Toma, P. Breger, G. Mullot, F. Augé, Ph. Balcou, H.G. Muller, P. Agostini, Observation of a Train of Attosecond Pulses from High Harmonic Generation, Science 292 (2001) 1689–1692. https://doi.org/10.1126/science.1059413
2001 doi
-
[367]
Krausz, M
F. Krausz, M. Ivanov, Attosecond physics, Rev. Mod. Phys. 81 (2009) 163–234. https://doi.org/10.1103/RevModPhys.81.163
2009 doi
-
[368]
Corkum, Plasma perspective on strong field multiphoton ionization, Phys
P.B. Corkum, Plasma perspective on strong field multiphoton ionization, Phys. Rev. Lett. 71 (1993) 1994–1997. https://doi.org/10.1103/PhysRevLett.71.1994
1993 doi
-
[369]
Lewenstein, Ph
M. Lewenstein, Ph. Balcou, M.Yu. Ivanov, A. L’Huillier, P.B. Corkum, Theory of high- harmonic generation by low-frequency laser fields, Phys. Rev. A 49 (1994) 2117–2132. https://doi.org/10.1103/PhysRevA.49.2117
1994 doi
-
[370]
Joachain, N.J
C.J. Joachain, N.J. Kylstra, R.M. Potvliege, Atoms in Intense Laser Fields, 1st ed., Cambridge University Press, 2011. https://doi.org/10.1017/CBO9780511993459
2011 doi
-
[371]
Boyd, Nonlinear Optics of Plasmonic Systems, in: Nonlinear Optics, Elsevier, 2020: pp
R.W. Boyd, Nonlinear Optics of Plasmonic Systems, in: Nonlinear Optics, Elsevier, 2020: pp. 569–582. https://doi.org/10.1016/B978-0-12-811002-7.00023-0
2020 doi
-
[372]
Even Tzur, M
M. Even Tzur, M. Birk, A. Gorlach, M. Krüger, I. Kaminer, O. Cohen, Photon-statistics force in ultrafast electron dynamics, Nat. Photon. 17 (2023) 501–509. https://doi.org/10.1038/s41566-023-01209-w
2023 doi
-
[373]
S. Kim, J. Jin, Y.-J. Kim, I.-Y. Park, Y. Kim, S.-W. Kim, High-harmonic generation by resonant plasmon field enhancement, Nature 453 (2008) 757–760. https://doi.org/10.1038/nature07012
2008 doi
-
[374]
I.-Y. Park, S. Kim, J. Choi, D.- H. Lee, Y. -J. Kim, M.F. Kling, M.I. Stockman, S.- W. Kim, Plasmonic generation of ultrashort extreme-ultraviolet light pulses, Nature Photon 5 (2011) 677–681. https://doi.org/10.1038/nphoton.2011.258
2011 doi
-
[375]
Ghimire, A.D
S. Ghimire, A.D. DiChiara, E. Sistrunk, P. Agostini, L.F. DiMauro, D.A. Reis, Observation of high-order harmonic generation in a bulk crystal, Nature Phys 7 (2011) 138–141. https://doi.org/10.1038/nphys1847
2011 doi
-
[376]
Schubert, M
O. Schubert, M. Hohenleutner, F. Langer, B. Urbanek, C. Lange, U. Huttner, D. Golde, T. Meier, M. Kira, S.W. Koch, R. Huber, Sub- cycle control of terahertz high-harmonic generation by dynamical Bloch oscillations, Nature Photon 8 (2014) 119–123. https://doi.org/10.1038/nphoto...
2014 doi
-
[377]
T.T. Luu, M. Garg, S.Yu. Kruchinin, A. Moulet, M.Th. Hassan, E. Goulielmakis, Extreme ultraviolet high-harmonic spectroscopy of solids, Nature 521 (2015) 498–502. https://doi.org/10.1038/nature14456
2015 doi
-
[378]
Ndabashimiye, S
G. Ndabashimiye, S. Ghimire, M. Wu, D.A. Browne, K.J. Schafer, M.B. Gaarde, D.A. Reis, Solid -state harmonics beyond the atomic limit, Nature 534 (2016) 520–523. https://doi.org/10.1038/nature17660
2016 doi
-
[379]
You, D.A
Y.S. You, D.A. Reis, S. Ghimire, Anisotropic high-harmonic generation in bulk crystals, Nature Phys 13 (2017) 345–349. https://doi.org/10.1038/nphys3955
2017 doi
-
[380]
A.J. Uzan, G. Orenstein, Á. Jiménez -Galán, C. McDonald, R.E.F. Silva, B.D. Bruner, N.D. Klimkin, V. Blanchet, T. Arusi-Parpar, M. Krüger, A.N. Rubtsov, O. Smirnova, M. Ivanov, B. Yan, T. Brabec, N. Dudovich, Attosecond spectral singularities in solid-state high-harmonic gener...
2020 doi
-
[381]
Y.S. You, Y. Yin, Y. Wu, A. Chew, X. Ren, F. Zhuang, S. Gholam -Mirzaei, M. Chini, Z. Chang, S. Ghimire, High- harmonic generation in amorphous solids, Nat Commun 8 (2017) 724. https://doi.org/10.1038/s41467-017-00989-4
2017 doi
-
[382]
H. Liu, Y. Li, Y.S. You, S. Ghimire, T.F. Heinz, D.A. Reis, High- harmonic generation from an atomically thin semiconductor, Nature Phys 13 (2017) 262– 265. https://doi.org/10.1038/nphys3946
2017 doi
-
[383]
Yoshikawa, T
N. Yoshikawa, T. Tamaya, K. Tanaka, High-harmonic generation in graphene enhanced by elliptically polarized light excitation, Science 356 (2017) 736–738. https://doi.org/10.1126/science.aam8861
2017 doi
-
[385]
Sivis, M
M. Sivis, M. Duwe, B. Abel, C. Ropers, Extreme -ultraviolet light generation in plasmonic nanostructures, Nature Phys 9 (2013) 304–309. https://doi.org/10.1038/nphys2590
2013 doi
-
[386]
S. Han, H. Kim, Y.W. Kim, Y.- J. Kim, S. Kim, I.-Y. Park, S.-W. Kim, High-harmonic generation by field enhanced femtosecond pulses in metal -sapphire nanostructure, Nat Commun 7 (2016) 13105. https://doi.org/10.1038/ncomms13105
2016 doi
-
[387]
Vampa, B.G
G. Vampa, B.G. Ghamsari, S. Siadat Mousavi, T.J. Hammond, A. Olivieri, E. Lisicka - Skrek, A.Y. Naumov, D.M. Villeneuve, A. Staudte, P. Berini, P.B. Corkum, Plasmon- enhanced high- harmonic generation from silicon, Nature Phys 13 (2017) 659–662. https://doi.org/10.1038/nphys4087
2017 doi
-
[388]
Imasaka, T
K. Imasaka, T. Kaji, T. Shimura, S. Ashihara, Antenna -enhanced high harmonic generation in a wide -bandgap semiconductor ZnO, Opt. Express 26 (2018) 21364. https://doi.org/10.1364/OE.26.021364
2018 doi
-
[389]
Sivis, M
M. Sivis, M. Taucer, G. Vampa, K. Johnston, A. Staudte, A.Yu. Naumov, D.M. Villeneuve, C. Ropers, P.B. Corkum, Tailored semiconductors for high- harmonic optoelectronics, Science 357 (2017) 303–306. https://doi.org/10.1126/science.aan2395
2017 doi
-
[390]
Korobenko, S
A. Korobenko, S. Rashid, C. Heide, A.Y. Naumov, D.A. Reis, P. Berini, P.B. Corkum, G. Vampa, In -Situ Nanoscale Focusing of Extreme Ultraviolet Solid- State High Harmonics, Phys. Rev. X 12 (2022) 041036. https://doi.org/10.1103/PhysRevX.12.041036
2022 doi
-
[391]
Gonoskov, N
I.A. Gonoskov, N. Tsatrafyllis, I.K. Kominis, P. Tzallas, Quantum optical signatures in strong-field laser physics: Infrared photon counting in high-order-harmonic generation, Sci Rep 6 (2016) 32821. https://doi.org/10.1038/srep32821
2016 doi
-
[392]
Bogatskaya, E.A
A.V. Bogatskaya, E.A. Volkova, A.M. Popov, Spontaneous emission of atoms in a strong laser field, J. Exp. Theor. Phys. 125 (2017) 587–596. https://doi.org/10.1134/S1063776117090114
2017 doi
-
[393]
Tsatrafyllis, I.K
N. Tsatrafyllis, I.K. Kominis, I.A. Gonoskov, P. Tzallas, High- order harmonics measured by the photon statistics of the infrared driving-field exiting the atomic medium, Nat Commun 8 (2017) 15170. https://doi.org/10.1038/ncomms15170
2017 doi
-
[394]
Tsatrafyllis, S
N. Tsatrafyllis, S. Kühn, M. Dumergue, P. Foldi, S. Kahaly, E. Cormier, I.A. Gonoskov, B. Kiss, K. Varju, S. Varro, P. Tzallas, Quantum Optical Signatures in a Strong Laser Pulse after Interaction with Semiconductors, Phys. Rev. Lett. 122 (2019) 193602. https://doi.org/10.1103...
2019 doi
-
[395]
Gombkötő, S
Á. Gombkötő, S. Varró, P. Mati, P. Földi, High- order harmonic generation as induced by a quantized field: Phase -space picture, Phys. Rev. A 101 (2020) 013418. https://doi.org/10.1103/PhysRevA.101.013418. 114
2020 doi
-
[396]
Gorlach, O
A. Gorlach, O. Neufeld, N. Rivera, O. Cohen, I. Kaminer, The quantum -optical nature of high harmonic generation, Nat Commun 11 (2020) 4598. https://doi.org/10.1038/s41467-020-18218-w
2020 doi
-
[397]
Gombkötő, P
Á. Gombkötő, P. Földi, S. Varró, Quantum -optical description of photon statistics and cross correlations in high-order harmonic generation, Phys. Rev. A 104 (2021) 033703. https://doi.org/10.1103/PhysRevA.104.033703
2021 doi
-
[398]
Lewenstein, M.F
M. Lewenstein, M.F. Ciappina, E. Pisanty, J. Rivera -Dean, P. Stammer, Th. Lamprou, P. Tzallas, Generation of optical Schrödinger cat states in intense laser –matter interactions, Nat. Phys. 17 (2021) 1104–1108. https://doi.org/10.1038/s41567- 021- 01317-w
2021 doi
-
[399]
Varró, Quantum Optical Aspects of High- Harmonic Generation, Photonics 8 (2021)
S. Varró, Quantum Optical Aspects of High- Harmonic Generation, Photonics 8 (2021)
2021
-
[400]
Stammer, J
P. Stammer, J. Rivera -Dean, T. Lamprou, E. Pisanty, M.F. Ciappina, P. Tzallas, M. Lewenstein, High Photon Number Entangled States and Coherent State Superposition from the Extreme Ultraviolet to the Far Infrared, Phys. Rev. Lett. 128 (2022) 123603. https://doi.org/10.1103/Phy...
2022 doi
-
[401]
Stammer, J
P. Stammer, J. Rivera -Dean, A. Maxwell, T. Lamprou, A. Ordóñez, M.F. Ciappina, P. Tzallas, M. Lewenstein, Quantum Electrodynamics of Intense Laser-Matter Interactions: A Tool for Quantum State Engineering, PRX Quantum 4 (2023) 010201. https://doi.org/10.1103/PRXQuantum.4.010201
2023 doi
-
[402]
Pizzi, A
A. Pizzi, A. Gorlach, N. Rivera, A. Nunnenkamp, I. Kaminer, Light emission from strongly driven many- body systems, Nat. Phys. 19 (2023) 551–561. https://doi.org/10.1038/s41567-022-01910-7
2023 doi
-
[403]
Gorlach, M.E
A. Gorlach, M.E. Tzur, M. Birk, M. Krüger, N. Rivera, O. Cohen, I. Kaminer, High- harmonic generation driven by quantum light, Nat. Phys. 19 (2023) 1689–1696. https://doi.org/10.1038/s41567-023-02127-y
2023 doi
-
[404]
Rasputnyi, Z
A. Rasputnyi, Z. Chen, M. Birk, O. Cohen, I. Kaminer, M. Krüger, D. Seletskiy, M. Chekhova, F. Tani, High-harmonic generation by a bright squeezed vacuum, Nat. Phys. (2024). https://doi.org/10.1038/s41567-024-02659-x
2024 doi
-
[405]
Uzan-Narovlansky, Á
A.J. Uzan-Narovlansky, Á. Jiménez-Galán, G. Orenstein, R.E.F. Silva, T. Arusi-Parpar, S. Shames, B.D. Bruner, B. Yan, O. Smirnova, M. Ivanov, N. Dudovich, Observation of light-driven band structure via multiband high- harmonic spectroscopy, Nat. Photonics 16 (2022) 428–432. ht...
2022 doi
-
[407]
Muniz, D
J.A. Muniz, D. Barberena, R.J. Lewis -Swan, D.J. Young, J.R.K. Cline, A.M. Rey, J.K. Thompson, Exploring dynamical phase transitions with cold atoms in an optical cavity, Nature 580 (2020) 602–607. https://doi.org/10.1038/s41586-020-2224-x
2020 doi
-
[408]
Zibrov, C.Y
A.S. Zibrov, C.Y. Ye, Y.V. Rostovtsev, A.B. Matsko, M.O. Scully, Observation of a three-photon electromagnetically induced transparency in hot atomic vapor, Phys. Rev. A 65 (2002) 043817. https://doi.org/10.1103/PhysRevA.65.043817
2002 doi
-
[409]
Ritsch, P
H. Ritsch, P. Domokos, F. Brennecke, T. Esslinger, Cold atoms in cavity- generated dynamical optical potentials, Rev. Mod. Phys. 85 (2013) 553–601. https://doi.org/10.1103/RevModPhys.85.553
2013 doi
-
[410]
Gallagher, Rydberg Atoms, Cambridge University Press, 2005
T.F. Gallagher, Rydberg Atoms, Cambridge University Press, 2005
2005
-
[411]
Omran, H
A. Omran, H. Levine, A. Keesling, G. Semeghini, T.T. Wang, S. Ebadi, H. Bernien, A.S. Zibrov, H. Pichler, S. Choi, J. Cui, M. Rossignolo, P. Rembold, S. Montangero, T. Calarco, M. Endres, M. Greiner, V. Vuletić, M.D. Lukin, Generation and manipulation 115 of Schrödinger cat st...
2019 doi
-
[412]
Browaeys, T
A. Browaeys, T. Lahaye, Many- body physics with individually controlled Rydberg atoms, Nat. Phys. 16 (2020) 132–142. https://doi.org/10.1038/s41567-019-0733-z
2020 doi
-
[413]
Scully, M.S
M.O. Scully, M.S. Zubairy, Quantum Optics, 1st ed., Cambridge University Press, 1997. https://doi.org/10.1017/CBO9780511813993
1997 doi
-
[414]
Stammer, On the limitations of the semi-classical picture in high harmonic generation, Nat
P. Stammer, On the limitations of the semi-classical picture in high harmonic generation, Nat. Phys. 20 (2024) 1040–1042. https://doi.org/10.1038/s41567-024-02579-w
2024 doi
-
[415]
M.E. Tzur, M. Birk, A. Gorlach, I. Kaminer, M. Krüger, O. Cohen, Generation of squeezed high-order harmonics, Phys. Rev. Research 6 (2024) 033079. https://doi.org/10.1103/PhysRevResearch.6.033079
2024 doi
-
[416]
Heckl, C.R.E
O.H. Heckl, C.R.E. Baer, C. Kränkel, S.V. Marchese, F. Schapper, M. Holler, T. Südmeyer, J.S. Robinson, J.W.G. Tisch, F. Couny, P. Light, F. Benabid, U. Keller, High harmonic generation in a gas-filled hollow-core photonic crystal fiber, Appl. Phys. B 97 (2009) 369–373. https:...
2009 doi
-
[417]
T. Sh. Iskhakov, A.M. Pérez, K. Yu. Spasibko, M.V. Chekhova, G. Leuchs, Superbunched bright squeezed vacuum state, Opt. Lett. 37 (2012) 1919. https://doi.org/10.1364/OL.37.001919
2012 doi
-
[418]
Finger, T.Sh
M.A. Finger, T.Sh. Iskhakov, N.Y. Joly, M.V. Chekhova, P.St.J. Russell, Raman- Free, Noble-Gas-Filled Photonic-Crystal Fiber Source for Ultrafast, Very Bright Twin-Beam Squeezed Vacuum, Phys. Rev. Lett. 115 (2015) 143602. https://doi.org/10.1103/PhysRevLett.115.143602
2015 doi
-
[419]
Salditt, M
T. Salditt, M. Osterhoff, X-ray Focusing and Optics, in: T. Salditt, A. Egner, D.R. Luke (Eds.), Nanoscale Photonic Imaging, Springer International Publishing, Cham, 2020: pp. 71–124. https://doi.org/10.1007/978-3-030-34413-9_3
2020 doi
-
[420]
Lohse, P
L.M. Lohse, P. Andrejić, Nano-optical theory of planar x-ray waveguides, Opt. Express 32 (2024) 9518. https://doi.org/10.1364/OE.504206
2024 doi
-
[421]
Osterhoff, T
M. Osterhoff, T. Salditt, Coherence filtering of x -ray waveguides: analytical and numerical approach, New J. Phys. 13 (2011) 103026. https://doi.org/10.1088/1367- 2630/13/10/103026
2011 doi
-
[422]
Pelliccia, D.M
D. Pelliccia, D.M. Paganin, Coherence filtering and revivals in x- ray waveguides: a communication-modes approach, J. Opt. Soc. Am. A 31 (2014) 1754. https://doi.org/10.1364/JOSAA.31.001754
2014 doi
-
[423]
Bukreeva, A
I. Bukreeva, A. Popov, D. Pelliccia, A. Cedola, S.B. Dabagov, S. Lagomarsino, Wave - Field Formation in a Hollow X -Ray Waveguide, Phys. Rev. Lett. 97 (2006) 184801. https://doi.org/10.1103/PhysRevLett.97.184801
2006 doi
-
[424]
Fuhse, T
C. Fuhse, T. Salditt, Propagation of X-rays in ultra-narrow slits, Optics Communications 265 (2006) 140–146. https://doi.org/10.1016/j.optcom.2006.03.011
2006 doi
-
[425]
Bergemann, H
C. Bergemann, H. Keymeulen, J.F. Van Der Veen, Focusing X -Ray Beams to Nanometer Dimensions, Phys. Rev. Lett. 91 (2003) 204801. https://doi.org/10.1103/PhysRevLett.91.204801
2003 doi
-
[426]
Pelliccia, I
D. Pelliccia, I. Bukreeva, A. Cedola, S. Lagomarsino, Dispersion properties of x- ray waveguides, Appl. Opt. 45 (2006) 2821. https://doi.org/10.1364/AO.45.002821
2006 doi
-
[427]
Melchior, T
L. Melchior, T. Salditt, Finite difference methods for stationary and time -dependent X- ray propagation, Opt. Express 25 (2017) 32090. https://doi.org/10.1364/OE.25.032090
2017 doi
-
[428]
Fuhse, T
C. Fuhse, T. Salditt, Finite-difference field calculations for one-dimensionally confined X-ray waveguides, Physica B: Condensed Matter 357 (2005) 57–60. https://doi.org/10.1016/j.physb.2004.11.019. 116
2005 doi
-
[429]
Soltau, L.M
J. Soltau, L.M. Lohse, M. Osterhoff, T. Salditt, Finite -difference propagation for the simulation of x -ray multilayer optics, Opt. Express 29 (2021) 41932. https://doi.org/10.1364/OE.445300
2021 doi
-
[430]
Paganin, D
D. Paganin, D. Paganin, Coherent X-Ray Optics, Oxford University Press, Oxford, New York, 2006
2006
-
[431]
Cloetens, W
P. Cloetens, W. Ludwig, J. Baruchel, D. Van Dyck, J. Van Landuyt, J.P. Guigay, M. Schlenker, Holotomography: Quantitative phase tomography with micrometer resolution using hard synchrotron radiation x rays, Applied Physics Letters 75 (1999) 2912–2914. https://doi.org/10.1063/1.125225
1999 doi
-
[432]
Gureyev, T.J
T.E. Gureyev, T.J. Davis, A. Pogany, S.C. Mayo, S.W. Wilkins, Optical phase retrieval by use of first Born- and Rytov- type approximations, Appl. Opt. 43 (2004) 2418. https://doi.org/10.1364/AO.43.002418
2004 doi
-
[433]
Nugent, Coherent methods in the X -ray sciences, Advances in Physics 59 (2010) 1–99
K.A. Nugent, Coherent methods in the X -ray sciences, Advances in Physics 59 (2010) 1–99. https://doi.org/10.1080/00018730903270926
2010 doi
-
[434]
https://doi.org/10.1088/0266-5611/31/6/065003
Simon Maretzke, A uniqueness result for propagation -based phase contrast imaging from a single measurement, Inverse Problems 31 (2015) 065003. https://doi.org/10.1088/0266-5611/31/6/065003
2015 doi
-
[435]
Hagemann, T
J. Hagemann, T. Salditt, Coherence-resolution relationship in holographic and coherent diffractive imaging, Opt. Express 26 (2018) 242. https://doi.org/10.1364/OE.26.000242
2018 doi
-
[436]
Mokso, P
R. Mokso, P. Cloetens, E. Maire, W. Ludwig, J.- Y. Buffière, Nanoscale zoom tomography with hard x rays using Kirkpatrick-Baez optics, Applied Physics Letters 90 (2007) 144104. https://doi.org/10.1063/1.2719653
2007 doi
-
[437]
Bartels, M
M. Bartels, M. Krenkel, J. Haber, R.N. Wilke, T. Salditt, X -Ray Holographic Imaging of Hydrated Biological Cells in Solution, Phys. Rev. Lett. 114 (2015) 048103. https://doi.org/10.1103/PhysRevLett.114.048103
2015 doi
-
[438]
Hagemann, A.- L
J. Hagemann, A.- L. Robisch, M. Osterhoff, T. Salditt, Probe reconstruction for holographic X -ray imaging, J Synchrotron Rad 24 (2017) 498–505. https://doi.org/10.1107/S160057751700128X
2017 doi
-
[439]
Hagemann, A.- L
J. Hagemann, A.- L. Robisch, D.R. Luke, C. Homann, T. Hohage, P. Cloetens, H. Suhonen, T. Salditt, Reconstruction of wave front and object for inline holography from a set of detection planes, Opt. Express 22 (2014) 11552. https://doi.org/10.1364/OE.22.011552
2014 doi
-
[440]
Homann, T
C. Homann, T. Hohage, J. Hagemann, A.- L. Robisch, T. Salditt, Publisher’s Note: Validity of the empty-beam correction in near-field imaging [Phys. Rev. A 91 , 013821 (2015)], Phys. Rev. A 91 (2015) 029905. https://doi.org/10.1103/PhysRevA.91.029905
2015 doi
-
[441]
Fuhse, C
C. Fuhse, C. Ollinger, T. Salditt, Waveguide -Based Off-Axis Holography with Hard X Rays, Phys. Rev. Lett. 97 (2006) 254801. https://doi.org/10.1103/PhysRevLett.97.254801
2006 doi
-
[442]
Stockmar, P
M. Stockmar, P. Cloetens, I. Zanette, B. Enders, M. Dierolf, F. Pfeiffer, P. Thibault, Near-field ptychography: phase retrieval for inline holography using a structured illumination, Sci Rep 3 (2013) 1927. https://doi.org/10.1038/srep01927
2013 doi
-
[443]
Robisch, J
A.-L. Robisch, J. Wallentin, A. Pacureanu, P. Cloetens, T. Salditt, Holographic imaging with a hard x- ray nanoprobe: ptychographic versus conventional phase retrieval, Opt. Lett. 41 (2016) 5519. https://doi.org/10.1364/OL.41.005519
2016 doi
-
[444]
Krenkel, M
M. Krenkel, M. Bartels, T. Salditt, Transport of intensity phase reconstruction to solve the twin image problem in holographic x- ray imaging, Opt. Express 21 (2013) 2220. https://doi.org/10.1364/OE.21.002220
2013 doi
-
[445]
Krenkel, M
M. Krenkel, M. Toepperwien, F. Alves, T. Salditt, Three -dimensional single -cell imaging with X-ray waveguides in the holographic regime, Acta Crystallogr A Found Adv 73 (2017) 282–292. https://doi.org/10.1107/S2053273317007902. 117
2017 doi
-
[446]
Krüger, H
S.P. Krüger, H. Neubauer, M. Bartels, S. Kalbfleisch, K. Giewekemeyer, P.J. Wilbrandt, M. Sprung, T. Salditt, Sub- 10 nm beam confinement by X -ray waveguides: design, fabrication and characterization of optical properties, J Synchrotron Rad 19 (2012) 227–
2012
-
[447]
Reichardt, C
M. Reichardt, C. Neuhaus, J.-D. Nicolas, M. Bernhardt, K. Toischer, T. Salditt, X -Ray Structural Analysis of Single Adult Cardiomyocytes: Tomographic Imaging and Microdiffraction, Biophysical Journal 119 (2020) 1309–1323. https://doi.org/10.1016/j.bpj.2020.08.019
2020 doi
-
[448]
Huhn, L.M
S. Huhn, L.M. Lohse, J. Lucht, T. Salditt, Fast algorithms for nonlinear and constrained phase retrieval in near -field X-ray holography based on Tikhonov regularization, Opt. Express 30 (2022) 32871. https://doi.org/10.1364/OE.462368
2022 doi
-
[449]
Paganin, S.C
D. Paganin, S.C. Mayo, T.E. Gureyev, P.R. Miller, S.W. Wilkins, Simultaneous phase and amplitude extraction from a single defocused image of a homogeneous object, Journal of Microscopy 206 (2002) 33 –40. https://doi.org/10.1046/j.1365- 2818.2002.01010.x
2002
-
[450]
Zabler, P
S. Zabler, P. Cloetens, J. -P. Guigay, J. Baruchel, M. Schlenker, Optimization of phase contrast imaging using hard x rays, Review of Scientific Instruments 76 (2005) 073705. https://doi.org/10.1063/1.1960797
2005 doi
-
[451]
Cloetens, R
P. Cloetens, R. Mache, M. Schlenker, S. Lerbs -Mache, Quantitative phase tomography of Arabidopsis seeds reveals intercellular void network, Proc. Natl. Acad. Sci. U.S.A. 103 (2006) 14626–14630. https://doi.org/10.1073/pnas.0603490103
2006 doi
-
[452]
Hagemann, M
J. Hagemann, M. Töpperwien, T. Salditt, Phase retrieval for near -field X-ray imaging beyond linearisation or compact support, Applied Physics Letters 113 (2018) 041109. https://doi.org/10.1063/1.5029927
2018 doi
-
[453]
Lohse, A.-L
L.M. Lohse, A.-L. Robisch, M. Töpperwien, S. Maretzke, M. Krenkel, J. Hagemann, T. Salditt, A phase-retrieval toolbox for X-ray holography and tomography, J Synchrotron Rad 27 (2020) 852–859. https://doi.org/10.1107/S1600577520002398
2020 doi
-
[454]
Soltau, M
J. Soltau, M. Vassholz, M. Osterhoff, T. Salditt, In- line holography with hard x-rays at sub-15 nm resolution, Optica 8 (2021) 818. https://doi.org/10.1364/OPTICA.420060
2021 doi
-
[455]
Howells, T
M.R. Howells, T. Beetz, H.N. Chapman, C. Cui, J.M. Holton, C.J. Jacobsen, J. Kirz, E. Lima, S. Marchesini, H. Miao, D. Sayre, D.A. Shapiro, J.C.H. Spence, D. Starodub, An assessment of the resolution limitation due to radiation -damage in X -ray diffra ction microscopy, Journa...
2009
-
[456]
Huang, H
X. Huang, H. Miao, J. Steinbrener, J. Nelson, D. Shapiro, A. Stewart, J. Turner, C. Jacobsen, Signal -to-noise and radiation exposure considerations in conventional and diffraction x -ray microscopy, Opt. Express 17 (2009) 13541. https://doi.org/10.1364/OE.17.013541
2009 doi
-
[457]
Elser, S
V. Elser, S. Eisebitt, Uniqueness transition in noisy phase retrieval, New J. Phys. 13 (2011) 023001. https://doi.org/10.1088/1367-2630/13/2/023001
2011 doi
-
[458]
Jahn, R.N
T. Jahn, R.N. Wilke, Y. Chushkin, T. Salditt, How many photons are needed to reconstruct random objects in coherent X -ray diffractive imaging?, Acta Crystallogr A Found Adv 73 (2017) 19–29. https://doi.org/10.1107/S2053273316015114
2017 doi
-
[459]
Hagemann, T
J. Hagemann, T. Salditt, Reconstructing mode mixtures in the optical near -field, Opt. Express 25 (2017) 13973. https://doi.org/10.1364/OE.25.013973
2017 doi
-
[460]
Zhong, M
Q. Zhong, M. Osterhoff, M.W. Wen, Z.S. Wang, T. Salditt, X‐ray waveguide arrays: tailored near fields by multi‐beam interference, X-Ray Spectrometry 46 (2017) 107–115. https://doi.org/10.1002/xrs.2740. 118
2017 doi
-
[461]
Krüger, K
S.P. Krüger, K. Giewekemeyer, S. Kalbfleisch, M. Bartels, H. Neubauer, T. Salditt, Sub- 15 nm beam confinement by two crossed x- ray waveguides, Opt. Express 18 (2010) 13492. https://doi.org/10.1364/OE.18.013492
2010 doi
-
[462]
Neubauer, S
H. Neubauer, S. Hoffmann, M. Kanbach, J. Haber, S. Kalbfleisch, S.P. Krüger, T. Salditt, High aspect ratio x-ray waveguide channels fabricated by e-beam lithography and wafer bonding, Journal of Applied Physics 115 (2014) 214305. https://doi.org/10.1063/1.4881495
2014 doi
-
[463]
Hoffmann- Urlaub, T
S. Hoffmann- Urlaub, T. Salditt, Miniaturized beamsplitters realized by X -ray waveguides, Acta Cryst. A 72 (2016) 515–522. https://doi.org/10.1107/S205327331601144X
2016 doi
-
[464]
Salditt, S
T. Salditt, S. Hoffmann, M. Vassholz, J. Haber, M. Osterhoff, J. Hilhorst, X-Ray Optics on a Chip: Guiding X Rays in Curved Channels, Phys. Rev. Lett. 115 (2015) 203902. https://doi.org/10.1103/PhysRevLett.115.203902
2015 doi
-
[465]
H.-Y. Chen, S. Hoffmann, T. Salditt, X -ray beam compression by tapered waveguides, Applied Physics Letters 106 (2015) 194105. https://doi.org/10.1063/1.4921095
2015 doi
-
[466]
Fuhse, A
C. Fuhse, A. Jarre, C. Ollinger, J. Seeger, T. Salditt, R. Tucoulou, Front -coupling of a prefocused x-ray beam into a monomodal planar waveguide, Applied Physics Letters 85 (2004) 1907–1909. https://doi.org/10.1063/1.1791736
2004 doi
-
[467]
Schenk, Optimization of resonances for multilayer x- ray resonators, Göttingen University Press, Göttingen, 2011
F. Schenk, Optimization of resonances for multilayer x- ray resonators, Göttingen University Press, Göttingen, 2011. https://doi.org/10.17875/gup2011-75
2011 doi
-
[468]
W. Jark, S. Di Fonzo, A. Cedola, S. Lagomarsino, The application of resonantly enhanced X -ray standing waves in fluorescence and waveguide experiments, Spectrochimica Acta Part B: Atomic Spectroscopy 54 (1999) 1487–1495. https://doi.org/10.1016/S0584-8547(99)00097-X
1999 doi
-
[469]
Salditt, F
T. Salditt, F. Pfeiffer, H. Perzl, A. Vix, U. Mennicke, A. Jarre, A. Mazuelas, T.H. Metzger, X -ray waveguides and thin macromolecular films, Physica B: Condensed Matter 336 (2003) 181–192. https://doi.org/10.1016/S0921-4526(03)00288-6
2003 doi
-
[470]
Jonnard, J.- M
P. Jonnard, J.- M. Ândré, C. Bonnelle, F. Bridou, B. Pardo, Modulation of x- ray line intensity emitted by a periodic structure under electron excitation, Applied Physics Letters 81 (2002) 1524–1526. https://doi.org/10.1063/1.1502189
2002 doi
-
[471]
André, P
J.-M. André, P. Jonnard, X-ray spontaneous emission control by 1-dimensional photonic bandgap structure, Eur. Phys. J. D 57 (2010) 411–418. https://doi.org/10.1140/epjd/e2010-00050-7
2010 doi
-
[472]
Jiang, J.W
Z. Jiang, J.W. Strzalka, D.A. Walko, J. Wang, Reconstruction of evolving nanostructures in ultrathin films with X -ray waveguide fluorescence holography, Nat Commun 11 (2020) 3197. https://doi.org/10.1038/s41467-020-16980-5
2020 doi
-
[473]
Vassholz, T
M. Vassholz, T. Salditt, Observation of electron- induced characteristic x -ray and bremsstrahlung radiation from a waveguide cavity, Sci. Adv. 7 (2021) eabd5677. https://doi.org/10.1126/sciadv.abd5677
2021 doi
-
[474]
Tomaš, Green function for multilayers: Light scattering in planar cavities, Phys
M.S. Tomaš, Green function for multilayers: Light scattering in planar cavities, Phys. Rev. A 51 (1995) 2545–2559. https://doi.org/10.1103/PhysRevA.51.2545
1995 doi
-
[475]
J.T. Shen, S. Fan, Coherent photon transport from spontaneous emission in one - dimensional waveguides, Opt. Lett. 30 (2005) 2001. https://doi.org/10.1364/OL.30.002001
2005 doi
-
[476]
Röhlsberger, K
R. Röhlsberger, K. Schlage, T. Klein, O. Leupold, Accelerating the Spontaneous Emission of X Rays from Atoms in a Cavity, Phys. Rev. Lett. 95 (2005) 097601. https://doi.org/10.1103/PhysRevLett.95.097601
2005 doi
-
[477]
Röhlsberger, K
R. Röhlsberger, K. Schlage, B. Sahoo, S. Couet, R. Rüffer, Collective Lamb Shift in Single-Photon Superradiance, Science 328 (2010) 1248–1251. https://doi.org/10.1126/science.1187770. 119
2010 doi
-
[478]
Haber, X
J. Haber, X. Kong, C. Strohm, S. Willing, J. Gollwitzer, L. Bocklage, R. Rüffer, A. Pálffy, R. Röhlsberger, Rabi oscillations of X -ray radiation between two nuclear ensembles, Nature Photon 11 (2017) 720–725. https://doi.org/10.1038/s41566- 017- 0013-3
2017 doi
-
[479]
Röhlsberger, H.- C
R. Röhlsberger, H.- C. Wille, K. Schlage, B. Sahoo, Electromagnetically induced transparency with resonant nuclei in a cavity, Nature 482 (2012) 199–203. https://doi.org/10.1038/nature10741
2012 doi
-
[480]
Heeg, H.- C
K.P. Heeg, H.- C. Wille, K. Schlage, T. Guryeva, D. Schumacher, I. Uschmann, K.S. Schulze, B. Marx, T. Kämpfer, G.G. Paulus, R. Röhlsberger, J. Evers, Vacuum-Assisted Generation and Control of Atomic Coherences at X-Ray Energies, Phys. Rev. Lett. 111 (2013) 073601. https://doi...
2013 doi
-
[482]
Röhlsberger, Nuclear Condensed Matter Physics with Synchrotron Radiation, Springer Berlin Heidelberg, Berlin, Heidelberg, 2005
R. Röhlsberger, Nuclear Condensed Matter Physics with Synchrotron Radiation, Springer Berlin Heidelberg, Berlin, Heidelberg, 2005. https://doi.org/10.1007/b86125
2005 doi
-
[483]
Huang, X.-J
X.-C. Huang, X.-J. Kong, T.-J. Li, Z.-R. Ma, H.-C. Wang, G.-C. Liu, Z.-S. Wang, W.- B. Li, L. -F. Zhu, Controlling core -hole lifetime through an x- ray planar cavity, Phys. Rev. Research 3 (2021) 033063. https://doi.org/10.1103/PhysRevResearch.3.033063
2021 doi
-
[484]
Ma, X.-C
Z.-R. Ma, X.-C. Huang, T.-J. Li, H.-C. Wang, G.-C. Liu, Z.-S. Wang, B. Li, W.- B. Li, L.-F. Zhu, First Observation of New Flat Line Fano Profile via an X-Ray Planar Cavity, Phys. Rev. Lett. 129 (2022) 213602. https://doi.org/10.1103/PhysRevLett.129.213602
2022 doi
-
[485]
Wolff, J
L. Wolff, J. Evers, Characterization and detection method for x -ray excitation of Mössbauer nuclei beyond the low-excitation regime, Phys. Rev. A 108 (2023) 043714. https://doi.org/10.1103/PhysRevA.108.043714
2023 doi
- [486]
- [487]
-
[488]
Rohlsberger, Theory of X-ray grazing incidence reflection in the presence of nuclear resonance excitation, Hyperfine Interactions 123/124 (1999) 301–325
R. Rohlsberger, Theory of X-ray grazing incidence reflection in the presence of nuclear resonance excitation, Hyperfine Interactions 123/124 (1999) 301–325. http://link.springer.com/10.1023/A:1017063605078
1999 doi
-
[489]
Huang, W.- B
X.-C. Huang, W.- B. Li, X. -J. Kong, L.- F. Zhu, Field redistribution inside an X -ray cavity-QED setup, Opt. Express 25 (2017) 31337. https://doi.org/10.1364/OE.25.031337
2017 doi
-
[490]
K.P. Heeg, J. Evers, X-ray quantum optics with Mössbauer nuclei embedded in thin-film cavities, Phys. Rev. A 88 (2013) 043828. https://doi.org/10.1103/PhysRevA.88.043828
2013 doi
-
[491]
K.P. Heeg, J. Evers, Collective effects between multiple nuclear ensembles in an x -ray cavity-QED setup, Phys. Rev. A 91 (2015) 063803. https://doi.org/10.1103/PhysRevA.91.063803
2015 doi
-
[492]
Lentrodt, K.P
D. Lentrodt, K.P. Heeg, C.H. Keitel, J. Evers, Ab initio quantum models for thin-film x- ray cavity QED, Phys. Rev. Research 2 (2020) 023396. https://doi.org/10.1103/PhysRevResearch.2.023396
2020 doi
-
[493]
Kong, D.E
X. Kong, D.E. Chang, A. Pálffy, Green’s-function formalism for resonant interaction of x rays with nuclei in structured media, Phys. Rev. A 102 (2020) 033710. https://doi.org/10.1103/PhysRevA.102.033710. 120
2020 doi
-
[494]
Diekmann, D
O. Diekmann, D. Lentrodt, J. Evers, Inverse design approach to x -ray quantum optics with Mössbauer nuclei in thin- film cavities, Phys. Rev. A 105 (2022) 013715. https://doi.org/10.1103/PhysRevA.105.013715
2022 doi
-
[495]
Chen, P.-H
Y.-H. Chen, P.-H. Lin, G.-Y. Wang, A. Pálffy, W.-T. Liao, Transient nuclear inversion by x-ray free electron laser in a tapered x-ray waveguide, Phys. Rev. Research 4 (2022) L032007. https://doi.org/10.1103/PhysRevResearch.4.L032007
2022 doi
-
[496]
Andrejić, L.M
P. Andrejić, L.M. Lohse, A. Pálffy, Waveguide QED with Mössbauer nuclei, Phys. Rev. A 109 (2024) 063702. https://doi.org/10.1103/PhysRevA.109.063702
2024 doi
-
[497]
Lohse, P
L.M. Lohse, P. Andrejić, S. Velten, M. Vassholz, C. Neuhaus, A. Negi, A. Panchwanee, I. Sergeev, A. Pálffy, T. Salditt, R. Röhlsberger, Collective nuclear excitation dynamics in mono -modal x- ray waveguides, arXiv (2024) 2403.06508. https://doi.org/10.48550/ARXIV.2403.06508
2024 doi
-
[498]
S.-Y. Lee, S. Ahrens, W.-T. Liao, Gravitationally sensitive structured x-ray optics using nuclear resonances, (2023). http://arxiv.org/abs/2305.00613 (accessed May 14, 2024)
2023 arXiv
-
[499]
Rabi, On the Process of Space Quantization, Phys
I.I. Rabi, On the Process of Space Quantization, Phys. Rev. 49 (1936) 324–328. https://doi.org/10.1103/PhysRev.49.324
1936 doi
-
[500]
S. Pan, C. Hu, W. Zhang, Z. Zhang, L. Zhou, C. Lu, P. Lu, H. Ni, J. Wu, F. He, Rabi oscillations in a stretching molecule, Light Sci Appl 12 (2023) 35. https://doi.org/10.1038/s41377-023-01075-9
2023 doi
-
[501]
Dörner, V
R. Dörner, V. Mergel, O. Jagutzki, L. Spielberger, J. Ullrich, R. Moshammer, H. Schmidt-Böcking, Cold Target Recoil Ion Momentum Spectroscopy: a ‘momentum microscope’ to view atomic collision dynamics, Physics Reports 330 (2000) 95–192. https://doi.org/10.1016/S0370-1573(99)00109-X
2000 doi
-
[502]
Ullrich, R
J. Ullrich, R. Moshammer, A. Dorn, R. Dörner, L.P.H. Schmidt, H. Schmidt -Böcking, Recoil-ion and electron momentum spectroscopy: reaction- microscopes, Rep. Prog. Phys. 66 (2003) 1463. https://doi.org/10.1088/0034-4885/66/9/203
2003 doi
-
[503]
Mossbauer, Recoilless Nuclear Resonance Absorption, Annual Review of Nuclear Science 12 (2003) 123–152
R. Mossbauer, Recoilless Nuclear Resonance Absorption, Annual Review of Nuclear Science 12 (2003) 123–152. https://doi.org/10.1146/annurev.ns.12.120162.001011
2003
-
[504]
Vértes, S
A. Vértes, S. Nagy, Z. Klencsár, R.G. Lovas, F. Rösch, eds., Handbook of Nuclear Chemistry, Springer US, Boston, MA, 2011. https://doi.org/10.1007/978- 1-4419-0720- 2
2011 doi
- [505]
-
[506]
W.-T. Liao, A. Pálffy, C.H. Keitel, Three-beam setup for coherently controlling nuclear- state population, Phys. Rev. C 87 (2013) 054609. https://doi.org/10.1103/PhysRevC.87.054609
2013 doi
-
[507]
Huang, W
W. Huang, W. Zhang, X. Du, C. Guo, Population transfer under local dephasing, EPJ Quantum Technol. 9 (2022) 34. https://doi.org/10.1140/epjqt/s40507-022-00152-z
2022 doi
-
[508]
Wang, F.-Q
Y. Wang, F.-Q. Dou, High-fidelity Nuclear Coherent Population Transfer via the Mixed- State Inverse Engineering, (2024). http://arxiv.org/abs/2404.08384 (accessed May 23, 2024)
2024 arXiv
-
[509]
Zhdanovich, E.A
S. Zhdanovich, E.A. Shapiro, M. Shapiro, J.W. Hepburn, V. Milner, Population Transfer between Two Quantum States by Piecewise Chirping of Femtosecond Pulses: Theory and Experiment, Phys. Rev. Lett. 100 (2008) 103004. https://doi.org/10.1103/PhysRevLett.100.103004
2008 doi
-
[510]
Bonacci, S.D
D. Bonacci, S.D. Bosanac, N. Došlić, Analytic pulse design for selective population transfer in many -level quantum systems: Maximizing the amplitude of population oscillations, Phys. Rev. A 70 (2004) 043413. https://doi.org/10.1103/PhysRevA.70.043413. 121
2004 doi
-
[511]
Hughes, Breakdown of the Area Theorem: Carrier -Wave Rabi Flopping of Femtosecond Optical Pulses, Phys
S. Hughes, Breakdown of the Area Theorem: Carrier -Wave Rabi Flopping of Femtosecond Optical Pulses, Phys. Rev. Lett. 81 (1998) 3363– 3366. https://doi.org/10.1103/PhysRevLett.81.3363
1998 doi
-
[512]
Cavaletto, C
S.M. Cavaletto, C. Buth, Z. Harman, E.P. Kanter, S.H. Southworth, L. Young, C.H. Keitel, Resonance fluorescence in ultrafast and intense x-ray free-electron-laser pulses, Phys. Rev. A 86 (2012) 033402. https://doi.org/10.1103/PhysRevA.86.033402
2012 doi
-
[513]
Makris, D.N
K.G. Makris, D.N. Christodoulides, O. Peleg, M. Segev, D. Kip, Optical transitions and Rabi oscillations in waveguide arrays, Opt. Express, OE 16 (2008) 10309–10314. https://doi.org/10.1364/OE.16.010309
2008 doi
-
[514]
Sofer, E
S. Sofer, E. Strizhevsky, A. Schori, K. Tamasaku, S. Shwartz, Quantum Enhanced X - ray Detection, Phys. Rev. X 9 (2019) 031033. https://doi.org/10.1103/PhysRevX.9.031033
2019 doi
-
[515]
Schneider, T
R. Schneider, T. Mehringer, G. Mercurio, L. Wenthaus, A. Classen, G. Brenner, O. Gorobtsov, A. Benz, D. Bhatti, L. Bocklage, B. Fischer, S. Lazarev, Y. Obukhov, K. Schlage, P. Skopintsev, J. Wagner, F. Waldmann, S. Willing, I. Zaluzhnyy, W. Wurth, I.A. Vartanyants, R. Röhlsber...
2018 doi
-
[516]
Lohse, M
L.M. Lohse, M. Vassholz, T. Salditt, On incoherent diffractive imaging, Acta Crystallogr A Found Adv 77 (2021) 480–496. https://doi.org/10.1107/S2053273321007300
2021 doi
-
[517]
Schori, D
A. Schori, D. Borodin, K. Tamasaku, S. Shwartz, Ghost imaging with paired x- ray photons, Phys. Rev. A 97 (2018) 063804. https://doi.org/10.1103/PhysRevA.97.063804
2018 doi
-
[518]
Moreau, E
P.-A. Moreau, E. Toninelli, T. Gregory, M.J. Padgett, Imaging with quantum states of light, Nat Rev Phys 1 (2019) 367–380. https://doi.org/10.1038/s42254-019-0056-0
2019 doi
-
[519]
H. Yu, R. Lu, S. Han, H. Xie, G. Du, T. Xiao, D. Zhu, Fourier-Transform Ghost Imaging with Hard X Rays, Phys. Rev. Lett. 117 (2016) 113901. https://doi.org/10.1103/PhysRevLett.117.113901
2016 doi
-
[520]
Strizhevsky, Y
E. Strizhevsky, Y. Klein, R. Hartmann, S. Francoual, T. Schulli, T. Zhou, U. Pietsch, L. Strüder, D. Altamura, C. Giannini, M. Shokr, S. Shwartz, Observation of X -ray Photon Pairs with a Pixelated Detector, (2024)
2024
-
[521]
Dresselhaus, M
J.L. Dresselhaus, M. Zakharova, N. Ivanov, H. Fleckenstein, M. Prasciolu, O. Yefanov, C. Li, W. Zhang, P. Middendorf, D. Egorov, I. De Gennaro Aquino, H.N. Chapman, S. Bajt, X-ray focusing below 3 nm with aberration-corrected multilayer Laue lenses, Opt. Express 32 (2024) 1600...
2024 doi
-
[522]
Jiang, J
H. Jiang, J. Xie, Y. He, Z. Jiang, D. Liang, H. Yu, A. Li, Multilayer Kirkpatrick- Baez focusing mirrors with phase compensation for sub- 20 nm focusing at the hard X -ray nanoprobe beamline of SSRF, Opt. Express 32 (2024) 13597. https://doi.org/10.1364/OE.514734
2024 doi
-
[523]
Keskinbora, C
K. Keskinbora, C. Grévent, M. Hirscher, M. Weigand, G. Schütz, Single -Step 3D Nanofabrication of Kinoform Optics via Gray-Scale Focused Ion Beam Lithography for Efficient X -Ray Focusing, Advanced Optical Materials 3 (2015) 792–800. https://doi.org/10.1002/adom.201400411
2015 doi
-
[524]
Keskinbora, U.T
K. Keskinbora, U.T. Sanli, C. Grévent, G. Schütz, Fabrication and x- ray testing of true kinoform lenses with high efficiencies, in: X -Ray Nanoimaging: Instruments and Methods II, SPIE, 2015: pp. 57–62. https://doi.org/10.1117/12.2187896
2015 doi
-
[525]
Zhang, B
H. Zhang, B. Zhang, C. Cai, K. Zhang, Y. Wang, Y. Wang, Y. Yang, Y. Wu, X. Ba, R. Hoogenboom, Water-dispersible X-ray scintillators enabling coating and blending with polymer materials for multiple applications, Nat Commun 15 (2024) 2055. https://doi.org/10.1038/s41467-024-462...
2024 doi
-
[526]
Glotov, A
A. Glotov, A. Vutolkina, A. Pimerzin, V. Vinokurov, Y. Lvov, Clay nanotube -metal core/shell catalysts for hydroprocesses, Chem. Soc. Rev. 50 (2021) 9240–9277. https://doi.org/10.1039/D1CS00502B
2021 doi
-
[527]
Peixoto, I
D. Peixoto, I. Pereira, M. Pereira-Silva, F. Veiga, M.R. Hamblin, Y. Lvov, M. Liu, A.C. Paiva-Santos, Emerging role of nanoclays in cancer research, diagnosis, and therapy, Coordination Chemistry Reviews 440 (2021) 213956. https://doi.org/10.1016/j.ccr.2021.213956
2021
-
[528]
Zhang, Y
F. Zhang, Y. Zhou, Z. Chen, M. Wang, Z. Ma, X. Chen, M. Jia, D. Wu, J. Xiao, X. Li, Y. Zhang, Z. Shi, C. Shan, Thermally Activated Delayed Fluorescence Zirconium‐Based Perovskites for Large‐Area and Ultraflexible X‐ray Scintillator Screens, Advanced Materials 34 (2022) 2204801...
2022 doi
-
[529]
Y. Li, Z. Shi, L. Wang, Y. Chen, W. Liang, D. Wu, X. Li, Y. Zhang, C. Shan, X. Fang, Solution-processed one-dimensional CsCu 2 I 3 nanowires for polarization-sensitive and flexible ultraviolet photodetectors, Mater. Horiz. 7 (2020) 1613–1622. https://doi.org/10.1039/D0MH00250J
2020 doi
-
[737]
https://doi.org/10.1038/s41566-023-01271-4
-
[926]
https://doi.org/10.1038/nphoton.2014.285
2014 doi
-
[2539]
https://doi.org/10.1103/PhysRev.130.2529
Reviewed August 12, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.