Pith. sign in

REVIEW 94 references

GaAs/AlAs Acoustic Nanocavities for Coherent GHz-THz Phonon Engineering

T0 review · reviewed 2026-06-30 · grok-4.3

Pith's one-line read GaAs/AlAs acoustic nanocavities establish a scalable platform for coherent control of GHz-THz phonons through optical-acoustic colocalization in micropillar resonators.

desk verdict This is a review summarizing GaAs/AlAs DBR micropillars for phonon work, with no new data or derivations. read the letter →

arxiv 2606.30510 v1 pith:62O4W33M submitted 2026-06-29 cond-mat.mes-hall

classification cond-mat.mes-hall
keywords acousticnanocavitiesphononengineeringGaAs/AlAsheterostructuresoptophononiccouplingmicropillarresonatorsGHz-THzphononsBrillouinscatteringdistributedBraggreflectors
verification ladder T0 review T1 audit T2 compute T3 formal

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The reading

The review argues that GaAs/AlAs heterostructures combine mature epitaxial growth with strong photoelastic coupling to enable simultaneous confinement of acoustic and optical modes across the GHz-THz range. DBR-based micropillar architectures achieve three-dimensional phonon trapping while preserving optical access for generation and readout. Ultrafast optical techniques such as picosecond ultrasonics and Brillouin scattering have revealed the dynamics, coherence, and dissipation of these confined modes. The central claim is that this material platform supports efficient coherent manipulation of phonons and opens routes to nonlinear phononics and hybrid quantum systems. A sympathetic reader would see the work as positioning GaAs/AlAs as a practical route to integrated phononic circuits where light and sound interact strongly at the nanoscale.

What carries the argument

DBR-based micropillar resonators that simultaneously confine acoustic and optical modes in three dimensions while exploiting the photoelastic response of the GaAs/AlAs lattice.

What would settle it

A competing nanostructure platform that achieves comparable or higher phonon coherence times and acousto-optic transduction efficiency without relying on GaAs/AlAs heterostructures or DBR micropillars.

Watch

Extended reading notes

Core claim

GaAs/AlAs acoustic nanocavities, realized through distributed Bragg reflector micropillars, deliver three-dimensional confinement of acoustic phonons together with colocalized optical fields, enabling coherent generation, detection, and manipulation of modes across the GHz-THz regime via established optophononic coupling.

Load-bearing premise

The combination of epitaxial maturity, photoelastic strength, and mode colocalization in GaAs/AlAs actually outperforms alternative material systems for coherent phonon control at these frequencies.

Editorial extensions

If this is right

  • Coherent phonon modes can be generated and read out optically with high efficiency using picosecond pulses and Brillouin scattering.
  • The same structures support exploration of nonlinear phononic interactions at the nanoscale.
  • Integration strategies become feasible for hybrid quantum systems that couple phonons to other degrees of freedom.
  • Scalable fabrication paths open for phononic circuits once electrical control and transduction challenges are addressed.

Reading between the lines

Editorial extensions of the paper, not claims the author makes directly.

  • The platform's optical accessibility could allow room-temperature operation of phonon-based sensors if dissipation mechanisms are further suppressed.
  • Direct comparison of coherence metrics with silicon or diamond nanophononic devices would clarify whether the GaAs/AlAs advantages are decisive or frequency-specific.
  • Extending the micropillar design to include electrical contacts might enable all-electrical phonon manipulation without optical intermediaries.
Share X Bluesky LinkedIn Reddit HN

Signed reviews

No signed human review yet.

Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, simulated authors' rebuttal, and a circularity audit.

Referee Report

0 major / 0 minor

Summary. The manuscript is a review article summarizing recent advances establishing GaAs/AlAs acoustic nanocavities, with emphasis on DBR-based micropillar resonators, as a versatile and scalable platform for coherent GHz-THz phonon engineering. The central claim rests on the favorable combination of mature epitaxial growth, strong photoelastic coupling, and optical-acoustic mode colocalization, supported by collective experimental results from ultrafast optical techniques such as picosecond ultrasonics and Brillouin scattering. The review addresses performance metrics, integration strategies, remaining challenges in acousto-optic transduction efficiency and scalable electrical control, and near-term perspectives for nonlinear phononics, hybrid quantum systems, and integrated phononic circuits.

Significance. If the literature synthesis holds, this review consolidates key developments in a promising nanophononic platform and provides a balanced roadmap that explicitly flags open challenges alongside achievements. It gives credit to the body of experimental demonstrations enabling coherent phonon generation, detection, and manipulation, which collectively support the positioning of GaAs/AlAs heterostructures for next-generation functionalities without relying on single untested assumptions or derivations.

Simulated Author's Rebuttal

0 responses · 0 unresolved

We thank the referee for their positive assessment of the manuscript and for recommending acceptance. We are pleased that the review is viewed as providing a balanced synthesis and roadmap for the GaAs/AlAs platform.

Circularity Check

0 steps flagged · score 0.0 of 10

No significant circularity

full rationale

This is a review paper that summarizes existing literature on GaAs/AlAs acoustic nanocavities without presenting any original derivations, equations, predictions, or fitted parameters. The central claims rest on collective experimental demonstrations from prior work rather than any self-referential construction or load-bearing self-citation chain within the manuscript itself. No steps match the enumerated circularity patterns.

Assumptions & free parameters 0 free parameters · 0 assumptions · 0 invented entities

As a review article, the central claim rests on the accuracy and representativeness of the summarized prior literature rather than new derivations, data, or postulates. No free parameters, axioms, or invented entities are introduced.

how reviews work

0 comments
Cite this review

Pith. "Pith review of GaAs/AlAs Acoustic Nanocavities for Coherent GHz-THz Phonon Engineering." pith.science (2026). https://pith.science/paper/62O4W33M

@misc{pith2026260630510,
  author       = {Pith},
  title        = {Pith review of: GaAs/AlAs Acoustic Nanocavities for Coherent GHz-THz Phonon Engineering},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/62O4W33M}},
  note         = {Machine review of arXiv:2606.30510}
}
read the original abstract

The controlled confinement of high-frequency acoustic phonons in semiconductor nanostructures has emerged as a key ingredient for functional nanophononic and hybrid quantum technologies. In this Review, we summarize recent advances that have established GaAs/AlAs acoustic nanocavities as a versatile and scalable platform for GHz-THz phonon engineering. Compared with alternative nanophononic platforms, GaAs/AlAs offers a particularly favorable combination of mature epitaxial growth, strong photoelastic coupling, and simultaneous optical-acoustic mode colocalization across the GHz-THz regime. We focus on distributed Bragg reflector (DBR)-based architectures, with particular emphasis on micropillar resonators enabling three-dimensional phonon confinement and strong colocalization of acoustic and optical fields. Recent developments in ultrafast optical techniques, including picosecond ultrasonics and Brillouin scattering, have provided unprecedented access to phonon dynamics, coherence, and dissipation at the nanoscale. These advances, combined with strong optophononic coupling, have enabled efficient coherent generation, detection, and manipulation of confined acoustic modes. We discuss key performance metrics, integration strategies, and remaining challenges, notably in acousto-optic transduction efficiency and scalable electrical control. Finally, we outline near-term perspectives for nonlinear phononics, hybrid quantum systems, and integrated phononic circuits, positioning GaAs/AlAs heterostructures as a robust and scalable platform for next-generation nanophononic functionalities.

Figures

Figures reproduced from arXiv: 2606.30510 by the authors.

Figure 1
Figure 1. Design principles of DBR-based acoustic phonon confinement in GaAs/AlAs het [PITH_FULL_IMAGE:figures/full_fig_p018_1.png] view at source ↗
Figure 2
Figure 2. Planar GaAs/AlAs acoustic nanocavity based on distributed Bragg reflectors. (a) [PITH_FULL_IMAGE:figures/full_fig_p019_2.png] view at source ↗
Figure 3
Figure 3. Architectures enabling three-dimensional confinement of acoustic and optical fields. [PITH_FULL_IMAGE:figures/full_fig_p020_3.png] view at source ↗
Figures from the paper (2 more)
Figure 4
Figure 4. Figure 4: Experimental techniques for probing high-frequency acoustic phonons in the 20- [PITH_FULL_IMAGE:figures/full_fig_p021_4.png]
Figure 5
Figure 5. Figure 5: Integrated nanophononic platforms and routes toward functional devices. (a) Mi [PITH_FULL_IMAGE:figures/full_fig_p021_5.png]

Discussion (0). Continue with ORCID to comment.

Reference graph

Works this paper leans on

94 extracted references · 1 canonical work pages

  1. [1]

    Madden, and Benjamin J

    Birgit Stiller, Moritz Merklein, Christian Wolff, Khu Vu, Pan Ma, Stephen J. Madden, and Benjamin J. Eggleton. Coherently refreshing hypersonic phonons for light storage.Optica, 7(5):492–497, May 2020

  2. [2]

    Madden, and Benjamin J

    Moritz Merklein, Birgit Stiller, Khu Vu, Pan Ma, Stephen J. Madden, and Benjamin J. Eggleton. On-chip broadband nonreciprocal light storage.Nanophotonics, 10:75–82, 2021

  3. [3]

    Langman, and Albert Schliesser

    Mads Bjerregaard Kristensen, Nenad Kralj, Eric C. Langman, and Albert Schliesser. Long- lived and Efficient Optomechanical Memory for Light.Physical Review Letters, 132:100802, 2024

  4. [4]

    Ultra- Stable Phonon Laser Through Closed-Loop Feedback Control for Optomechanical Sensing

    Ziwen Pan, Yi Yang, Wenyao Liu, Enbo Xing, Yanru Zhou, Jun Tang, and Jun Liu. Ultra- Stable Phonon Laser Through Closed-Loop Feedback Control for Optomechanical Sensing. Laser Photonics Rev, 18:2400593, 2024

  5. [5]

    listening

    Haonan Chang and Jun Zhang. Detecting nanoparticles by “listening”.Frontiers of Physics, 18:53602, 2023

  6. [6]

    Anderson, Santiago Tarrago Velez, Kilian Seibold, Hugo Flayac, Vincenzo Savona, Nicolas Sangouard, and Christophe Galland

    Mitchell D. Anderson, Santiago Tarrago Velez, Kilian Seibold, Hugo Flayac, Vincenzo Savona, Nicolas Sangouard, and Christophe Galland. Two-Color Pump-Probe Measure- ment of Photonic Quantum Correlations Mediated by a Single Phonon.Physical Review Letters, 120:233601, 2018

  7. [7]

    Optoacoustic Entanglement in a Con- tinuous Brillouin-Active Solid State System.Physical Review Letters, 133:203602, 2024

    Changlong Zhu, Claudiu Genes, and Birgit Stiller. Optoacoustic Entanglement in a Con- tinuous Brillouin-Active Solid State System.Physical Review Letters, 133:203602, 2024

  8. [8]

    Florez, G

    O. Florez, G. Arregui, M. Albrechtsen, R. C. Ng, J. Gomis-Bresco, S. Stobbe, C. M. Sotomayor-Torres, and P. D. Garc´ ıa. Engineering nanoscale hypersonic phonon transport. Nature Nanotechnology, 17:947–951, 2022

Show all 94 references
  1. [9]

    Oliver Braun, Roman Furrer, Pascal Butti, Kishan Thodkar, Ivan Shorubalko, Ilaria Zardo, Michel Calame, and Mickael L. Perrin. Spatially mapping thermal transport in graphene by an opto-thermal method.npj 2D Materials and Applications, 6:6, 2022

  2. [10]

    Fainstein, M

    A. Fainstein, M. Trigo, D. Oliva, B. Jusserand, T. Freixanet, and V. Thierry-Mieg. Stand- ing Optical Phonons in Finite Semiconductor Superlattices Studied by Resonant Raman Scattering in a Double Microcavity.Physical Review Letters, 86(15):3411–3414, April 2001

  3. [11]

    Trigo, A

    M. Trigo, A. Bruchhausen, A. Fainstein, B. Jusserand, and V. Thierry-Mieg. Confine- ment of Acoustical Vibrations in a Semiconductor Planar Phonon Cavity.Physical Review Letters, 89(22):227402, November 2002

  4. [12]

    Anguiano, A

    S. Anguiano, A. E. Bruchhausen, B. Jusserand, I. Favero, F. R. Lamberti, L. Lanco, I. Sagnes, A. Lemaˆ ıtre, N. D. Lanzillotti-Kimura, P. Senellart, and A. Fainstein. Micropil- lar Resonators for Optomechanics in the Extremely High 19–95-GHz Frequency Range. Physical Review Le...

  5. [13]

    Fainstein, N

    A. Fainstein, N. D. Lanzillotti-Kimura, B. Jusserand, and B. Perrin. Strong Optical- Mechanical Coupling in a Vertical GaAs/AlAs Microcavity for Subterahertz Phonons and Near-Infrared Light.Physical Review Letters, 110(3):037403, January 2013. 10

  6. [14]

    Pfeif- fer, Ken West, David W

    Yongbao Sun, Patrick Wen, Yoseob Yoon, Gangqiang Liu, Mark Steger, Loren N. Pfeif- fer, Ken West, David W. Snoke, and Keith A. Nelson. Bose-Einstein Condensation of Long-Lifetime Polaritons in Thermal Equilibrium.Physical Review Letters, 118(1):016602, January 2017

  7. [15]

    Condensation of Semiconductor Microcavity Exciton Polaritons.Science, 298:199–202, 2002

    Hui Deng, Gregor Weihs, Charles Santori, Jacqueline Bloch, and Yoshihisa Yamamoto. Condensation of Semiconductor Microcavity Exciton Polaritons.Science, 298:199–202, 2002

  8. [16]

    Tawara, H

    T. Tawara, H. Gotoh, T. Akasaka, N. Kobayashi, and T. Saitoh. Cavity Polaritons in InGaN Microcavities at Room Temperature.Physical Review Letters, 92(25):256402, June 2004

  9. [17]

    St-Jean, V

    P. St-Jean, V. Goblot, E. Galopin, A. Lemaˆ ıtre, T. Ozawa, L. Le Gratiet, I. Sagnes, J. Bloch, and A. Amo. Lasing in topological edge states of a one-dimensional lattice. Nature Photonics, 11(10):651–656, October 2017

  10. [18]

    Somaschi, V

    N. Somaschi, V. Giesz, L. De Santis, J. C. Loredo, M. P. Almeida, G. Hornecker, S. L. Portalupi, T. Grange, C. Ant´ on, J. Demory, C. G´ omez, I. Sagnes, N. D. Lanzillotti-Kimura, A. Lema´ ıtre, A. Auffeves, A. G. White, L. Lanco, and P. Senellart. Near-optimal single- photon ...

  11. [19]

    Single-photon emission at 1.55µ m from MOVPE-grown InAs quantum dots on InGaAs/GaAs metamorphic buffers.Applied Physics Letters, 111(3):033102, July 2017

    Matthias Paul, Fabian Olbrich, Jonatan H¨ oschele, Susanne Schreier, Jan Kettler, Si- mone Luca Portalupi, Michael Jetter, and Peter Michler. Single-photon emission at 1.55µ m from MOVPE-grown InAs quantum dots on InGaAs/GaAs metamorphic buffers.Applied Physics Letters, 111(3)...

  12. [20]

    Monolayer-Based Single-Photon Source in a Liquid-Helium-Free Open Cavity Featuring 65% Brightness and Quantum Coherence.Nano Letters, 23(18):8683–8689, September 2023

    Jens-Christian Drawer, Victor Nikolaevich Mitryakhin, Hangyong Shan, Sven Stephan, Moritz Gittinger, Lukas Lackner, Bo Han, Gilbert Leibeling, Falk Eilenberger, Rounak Banerjee, Sefaattin Tongay, Kenji Watanabe, Takashi Taniguchi, Christoph Lienau, Martin Silies, Carlos Anton-...

  13. [21]

    Narayanamurti, H

    V. Narayanamurti, H. L. St¨ ormer, M. A. Chin, A. C. Gossard, and W. Wiegmann. Selec- tive Transmission of High-Frequency Phonons by a Superlattice: The ”Dielectric” Phonon Filter.Physical Review Letters, 43(27):2012–2016, December 1979

  14. [22]

    Thomsen, J

    C. Thomsen, J. Strait, Z. Vardeny, H. J. Maris, J. Tauc, and J. J. Hauser. Coherent Phonon Generation and Detection by Picosecond Light Pulses.Physical Review Letters, 53(10):989–992, September 1984

  15. [23]

    Balandin

    Fariborz Kargar and Alexander A. Balandin. Advances in Brillouin–Mandelstam light- scattering spectroscopy.Nature Photonics, 15(10):720–731, October 2021

  16. [24]

    N. D. Lanzillotti-Kimura, A. Fainstein, A. Lemaˆ ıtre, and B. Jusserand. Nanowave devices for terahertz acoustic phonons.Applied Physics Letters, 88(8):083113, February 2006

  17. [25]

    N. D. Lanzillotti-Kimura, A. Fainstein, B. Jusserand, A. Lemaˆ ıtre, O. Mauguin, and L. Largeau. Acoustic phonon nanowave devices based on aperiodic multilayers: Exper- iments and theory.Physical Review B, 76(17):174301, November 2007

  18. [26]

    Huynh, N

    A. Huynh, N. D. Lanzillotti-Kimura, B. Jusserand, B. Perrin, A. Fainstein, M. F. Pascual- Winter, E. Peronne, and A. Lemaˆ ıtre. Subterahertz Phonon Dynamics in Acoustic Nanocavities.Physical Review Letters, 97(11):115502, September 2006. 11

  19. [27]

    A. A. Maznev, Felix Hofmann, Adam Jandl, Keivan Esfarjani, Mayank T. Bulsara, Eu- gene A. Fitzgerald, Gang Chen, and Keith A. Nelson. Lifetime of sub-THz coherent acous- tic phonons in a GaAs-AlAs superlattice.Applied Physics Letters, 102(4):041901, January 2013

  20. [28]

    Scherbakov, Serhii M

    Michal Kobecki, Alexey V. Scherbakov, Serhii M. Kukhtaruk, Dmytro D. Yaremkevich, Tobias Henksmeier, Alexander Trapp, Dirk Reuter, Vitalyi E. Gusev, Andrey V. Akimov, and Manfred Bayer. Giant Photoelasticity of Polaritons for Detection of Coherent Phonons in a Superlattice wit...

  21. [29]

    Samusev, Tetiana L

    Marek Karzel, Anton K. Samusev, Tetiana L. Linnik, Mario Littmann, Dirk Reuter, Man- fred Bayer, Andrey V. Akimov, and Alexey V. Scherbakov. Polariton probing of attometre displacement and nanoscale strain in ultrashort acoustic pulses.Nature Materials, 24:1209– 1214, 2025

  22. [30]

    Coherent Acoustic Phonon Oscilla- tions in Semiconductor Multiple Quantum Wells with Piezoelectric Fields.Physical Review Letters, 84(1):179–182, January 2000

    Chi-Kuang Sun, Jian-Chin Liang, and Xiang-Yang Yu. Coherent Acoustic Phonon Oscilla- tions in Semiconductor Multiple Quantum Wells with Piezoelectric Fields.Physical Review Letters, 84(1):179–182, January 2000

  23. [31]

    Efficient generation of coherent acoustic phonons in (111) InGaAs/GaAs mul- tiple quantum wells through piezoelectric effects.Applied Physics Letters, 90(17):172102, April 2007

    Yu-Chieh Wen, Li-Chang Chou, Hao-Hsiung Lin, Vitalyi Gusev, Kung-Hsuan Lin, and Chi- Kuang Sun. Efficient generation of coherent acoustic phonons in (111) InGaAs/GaAs mul- tiple quantum wells through piezoelectric effects.Applied Physics Letters, 90(17):172102, April 2007

  24. [32]

    Spectral analysis of high-harmonic coherent acoustic phonons in piezoelectric semiconductor multiple quantum wells.Physical Review B, 67(12):121303, March 2003

    Gia-Wei Chern, Kung-Hsuan Lin, Yue-Kai Huang, and Chi-Kuang Sun. Spectral analysis of high-harmonic coherent acoustic phonons in piezoelectric semiconductor multiple quantum wells.Physical Review B, 67(12):121303, March 2003

  25. [33]

    Yaremkevich, Alexey V

    Dmytro D. Yaremkevich, Alexey V. Scherbakov, Serhii M. Kukhtaruk, Tetiana L. Lin- nik, Nikolay E. Khokhlov, Felix Godejohann, Olga A. Dyatlova, Achim Nadzeyka, Debi P. Pattnaik, Mu Wang, Syamashree Roy, Richard P. Campion, Andrew W. Rushforth, Vi- talyi E. Gusev, Andrey V. Aki...

  26. [34]

    Gigahertz Coherent Guided Acoustic Phonons in AlN/GaN Nanowire Superlattices.Nano Letters, 13(3):1139–1144, March 2013

    Pierre-Adrien Mante, Yueh-Chun Wu, Yuan-Ting Lin, Cheng-Ying Ho, Li-Wei Tu, and Chi-Kuang Sun. Gigahertz Coherent Guided Acoustic Phonons in AlN/GaN Nanowire Superlattices.Nano Letters, 13(3):1139–1144, March 2013

  27. [35]

    Wang, C.L

    F. Wang, C.L. Poyser, M.T. Greenaway, A.V. Akimov, R.P. Campion, A.J. Kent, T.M. Fromhold, and A.G. Balanov. Ultrafast Strain-Induced Charge Transport in Semiconductor Superlattices.Physical Review Applied, 14(4):044037, October 2020

  28. [36]

    Akimov, A.V

    A.V. Akimov, A.V. Scherbakov, D.R. Yakovlev, and M. Bayer. Picosecond acoustics in semiconductor optoelectronic nanostructures.Ultrasonics, 56:122–128, February 2015

  29. [37]

    Samusev, Tetiana L

    Marek Karzel, Anton K. Samusev, Tetiana L. Linnik, Mario Littmann, Dirk Reuter, Man- fred Bayer, Alexey V. Scherbakov, and Andrey V. Akimov. Polariton-Induced Transparency in Multiple Quantum Wells Probed by Time Domain Brillouin Scattering.ACS Photonics, 11(12):5147–5154, Dec...

  30. [38]

    M. B. Panish. Molecular beam epitaxy.Science, 208(4446):916–922, 1980. 12

  31. [39]

    Rodriguez, P

    A. Rodriguez, P. Priya, O. Ortiz, P. Senellart, C. Gomez-Carbonell, A. Lemaˆ ıtre, M. Es- mann, and N. D. Lanzillotti-Kimura. Fiber-based angular filtering for high-resolution Brillouin spectroscopy in the 20-300 GHz frequency range.Optics Express, 29(2):2637, 2021

  32. [40]

    Groves.3 - Electron beam lithography

    T.R. Groves.3 - Electron beam lithography. Woodhead Publishing, 2014

  33. [41]

    Reitzenstein, C

    S. Reitzenstein, C. Hofmann, A. Gorbunov, M. Strauß, S. H. Kwon, C. Schneider, A. L¨ offler, S. H¨ ofling, M. Kamp, and A. Forchel. AlAs/GaAs micropillar cavities with quality factors exceeding 150.000.Applied Physics Letters, 90(25):251109, 2007

  34. [42]

    Dousse, L

    A. Dousse, L. Lanco, J. Suffczy´ nski, E. Semenova, A. Miard, A. Lemaˆ ıtre, I. Sagnes, C. Roblin, J. Bloch, and P. Senellart. Controlled Light-Matter Coupling for a Single Quantum Dot Embedded in a Pillar Microcavity Using Far-Field Optical Lithography. Physical Review Letter...

  35. [43]

    Pearton and David P

    Stephen J. Pearton and David P. Norton. Dry etching of electronic oxides, polymers, and semiconductors.Plasma Processes and Polymers, 2(1):16–37, 2004

  36. [44]

    Tzu-Yi Lee, Pei-Tien Chen, Chien-Chi Huang, Hsin-Chu Chen, Li-Yin Chen, Po-Tsung Lee, Fang-Chung Chen, Ray-Hua Horng, and Hao-Chung Kuo. Advances in core technolo- gies for semiconductor manufacturing: Applications and challenges of atomic layer etching, neutral beam etching a...

  37. [45]

    Anne Rodriguez, Priya Priya, Edson R. Cardozo De Oliveira, Abdelmounaim Harouri, Isabelle Sagnes, Florian Pastier, Luc Le Gratiet, Martina Morassi, Aristide Lemaˆ ıtre, Lo¨ ıc Lanco, Martin Esmann, and Norberto Daniel Lanzillotti-Kimura. Brillouin Scattering Selection Rules in...

  38. [46]

    Xiang, E

    C. Xiang, E. R. Cardozo de Oliveira, S. Sandeep, K. Papatryfonos, M. Morassi, L. Le Gratiet, A. Harouri, I. Sagnes, A. Lemaitre, O. Ortiz, M. Esmann, and N. D. Lanzillotti- Kimura. Interference of ultrahigh frequency acoustic phonons from distant quasi-continuous sources.arXiv...

  39. [47]

    Polariton laser using single micropillar GaAs−GaAlAs semiconductor cavities.Phys

    Daniele Bajoni, Pascale Senellart, Esther Wertz, Isabelle Sagnes, Audrey Miard, Aristide Lemaˆ ıtre, and Jacqueline Bloch. Polariton laser using single micropillar GaAs−GaAlAs semiconductor cavities.Phys. Rev. Lett., 100:047401, 2008

  40. [48]

    Walker, Toby Dowling, Oleksandr Kyriienko, Ivan A

    Tintu Kuriakose, Paul M. Walker, Toby Dowling, Oleksandr Kyriienko, Ivan A. Shelykh, Phillipe St-Jean, Nicola Carlon Zambon, Aristide Lemaˆ ıtre, Isabelle Sagnes, Luc Legratiet, Abdelmounaim Harouri, Sylvain Ravets, Maurice S. Skolnick, Alberto Amo, Jacqueline Bloch, and Dmitr...

  41. [49]

    Kuszelewicz, I

    R. Kuszelewicz, I. Ganne, I. Sagnes, G. Slekys, and M. Brambilla. Optical self-organization in bulk and multiquantum well gaalas microresonators.Phys. Rev. Lett., 84:6006–6009, 2000

  42. [50]

    Rivera, F

    T. Rivera, F. R. Ladan, A. Izra¨ el, R. Azoulay, R. Kuszelewicz, and J. L. Oudar. Reduced threshold all-optical bistability in etched quantum well microresonators.Applied Physics Letters, 64(7):869–871, 1994

  43. [51]

    J. A. Frey, H. J. Snijders, J. Norman, A. C. Gossard, J. E. Bowers, W. L¨ offler, and D. Bouwmeester. Electro-optic polarization tuning of microcavities with a single quantum dot.Opt. Lett., 43(17):4280–4283, 2018. 13

  44. [52]

    Maris, Zbigniew R

    Wei Chen, Humphrey J. Maris, Zbigniew R. Wasilewski, and Shin-Ichiro Tamura. Atten- uation and velocity of 56 GHz longitudinal phonons in gallium arsenide from 50 to 300 K. Philosophical Magazine B, 70(3):687–698, September 1994

  45. [53]

    R. Gebs, G. Klatt, C. Janke, T. Dekorsy, and A. Bartels. High-speed asynchronous optical sampling with sub-50fs time resolution.Opt. Express, 18:5974–5983, 2010

  46. [54]

    M. C. Velsink, M. Illienko, P. Sudera, and S. Witte. Optimizing pump–probe reflectivity measurements of ultrafast photoacoustics with modulated asynchronous optical sampling. Review of Scientific Instruments, 94(10):103002, 2023

  47. [55]

    M. F. Pascual Winter, G. Rozas, A. Fainstein, B. Jusserand, B. Perrin, A. Huynh, P. O. Vaccaro, and S. Saravanan. Selective Optical Generation of Coherent Acoustic Nanocavity Modes.Physical Review Letters, 98(26):265501, June 2007

  48. [56]

    Matsuda, I

    O. Matsuda, I. Ishii, T. Fukui, J.J. Baumberg, and O.B. Wright. Wavelength selective pho- toexcitation of picosecond acoustic-phonon pulses in a triple GaAs/Al0.3Ga0.7As quantum well structure.Physica B: Condensed Matter, 316–317:205–208, May 2002

  49. [57]

    Matsuda, T

    O. Matsuda, T. Tachizaki, T. Fukui, J. J. Baumberg, and O. B. Wright. Acoustic phonon generation and detection in GaAs / Al 0.3 Ga 0.7 As quantum wells with picosecond laser pulses.Physical Review B, 71(11):115330, March 2005

  50. [58]

    Lanzillotti-Kimura, A

    N.D. Lanzillotti-Kimura, A. Fainstein, and B. Jusserand. Towards ghz–thz cavity optome- chanics in dbr-based semiconductor resonators.Ultrasonics, 56:80–89, 2015

  51. [59]

    Arregui, N

    G. Arregui, N. D. Lanzillotti-Kimura, C. M. Sotomayor-Torres, and P. D. Garc´ ıa. Anderson Photon-Phonon Colocalization in Certain Random Superlattices.Physical Review Letters, 122(4):043903, February 2019

  52. [60]

    Ortiz, P

    O. Ortiz, P. Priya, A. Rodriguez, A. Lemaitre, M. Esmann, and N. D. Lanzillotti-Kimura. Topological optical and phononic interface mode by simultaneous band inversion.Optica, 8(5):598, May 2021

  53. [61]

    N. D. Lanzillotti-Kimura, A. Fainstein, C. A. Balseiro, and B. Jusserand. Phonon engi- neering with acoustic nanocavities: Theoretical considerations on phonon molecules, band structures, and acoustic Bloch oscillations.Physical Review B, 75(2):024301, January 2007

  54. [62]

    Sreerag, Rajeev N

    Muhammad Hanif, Milos Dubajic, Sujakala J. Sreerag, Rajeev N. Kini, Gavin J. Conibeer, Michael P. Nielsen, and Stephen P. Bremner. Long-Lived Acoustic Phonon and Carrier Dynamics in III–V Adiabatic Cavities.Advanced Functional Materials, 34:2404299, 2024

  55. [63]

    Bruchhausen, R

    A. Bruchhausen, R. Gebs, F. Hudert, D. Issenmann, G. Klatt, A. Bartels, O. Schecker, R. Waitz, A. Erbe, E. Scheer, J.-R. Huntzinger, A. Mlayah, and T. Dekorsy. Subharmonic Resonant Optical Excitation of Confined Acoustic Modes in a Free-Standing Semiconductor Membrane at GHz F...

  56. [64]

    R. P. Beardsley, A. V. Akimov, M. Henini, and A. J. Kent. Coherent Terahertz Sound Amplification and Spectral Line Narrowing in a Stark Ladder Superlattice.Physical Review Letters, 104(8):085501, February 2010

  57. [65]

    Maryam, A

    W. Maryam, A. V. Akimov, R. P. Campion, and A. J. Kent. Dynamics of a vertical cavity quantum cascade phonon laser structure.Nature Communications, 4(1):2184, July 2013. 14

  58. [66]

    Poyser, Andrey V

    Caroline L. Poyser, Andrey V. Akimov, Richard P. Campion, and Anthony J. Kent. Coher- ent phonon optics in a chip with an electrically controlled active device.Scientific Reports, 5(1):8279, February 2015

  59. [67]

    D. L. Chafatinos, A. S. Kuznetsov, S. Anguiano, A. E. Bruchhausen, A. A. Reynoso, K. Biermann, P. V. Santos, and A. Fainstein. Polariton-driven phonon laser.Nature Communications, 11(1):4552, September 2020

  60. [68]

    Microcavity phonoritons – a coherent optical-to- microwave interface.Nature Communications, 14(1):5470, September 2023

    Alexander Sergeevich Kuznetsov, Klaus Biermann, Andres Alejandro Reynoso, Alejandro Fainstein, and Paulo Ventura Santos. Microcavity phonoritons – a coherent optical-to- microwave interface.Nature Communications, 14(1):5470, September 2023

  61. [69]

    Carraro-Haddad, D

    I. Carraro-Haddad, D. L. Chafatinos, A. S. Kuznetsov, I. A. Papuccio-Fern´ andez, A. A. Reynoso, A. Bruchhausen, K. Biermann, P. V. Santos, G. Usaj, and A. Fainstein. Solid- state continuous time crystal in a polariton condensate with a built-in mechanical clock. Science, 384(...

  62. [70]

    Sesin, A

    P. Sesin, A. S. Kuznetsov, G. Rozas, S. Anguiano, A. E. Bruchhausen, A. Lemaˆ ıtre, K. Bier- mann, P. V. Santos, and A. Fainstein. Giant optomechanical coupling and dephasing pro- tection with cavity exciton-polaritons.Physical Review Research, 5(4):L042035, December 2023

  63. [71]

    Acoustic confinement in superlattice cavities.Physical Review A, 94(3):033813, September 2016

    Daniel Garcia-Sanchez, Samuel D´ eleglise, Jean-Louis Thomas, Paola Atkinson, Camille Lagoin, and Bernard Perrin. Acoustic confinement in superlattice cavities.Physical Review A, 94(3):033813, September 2016

  64. [72]

    F. R. Lamberti, Q. Yao, L. Lanco, D. T. Nguyen, M. Esmann, A. Fainstein, P. Sesin, S. Anguiano, V. Villafa˜ ne, A. Bruchhausen, P. Senellart, I. Favero, and N. D. Lanzillotti- Kimura. Optomechanical properties of GaAs/AlAs micropillar resonators operating in the 18 GHz range.O...

  65. [73]

    High spectral resolution of GaAs/AlAs phononic cavities by subharmonic resonant pump-probe excita- tion.Physical Review B, 99(6):060101, February 2019

    Camille Lagoin, Bernard Perrin, Paola Atkinson, and Daniel Garcia-Sanchez. High spectral resolution of GaAs/AlAs phononic cavities by subharmonic resonant pump-probe excita- tion.Physical Review B, 99(6):060101, February 2019

  66. [74]

    Esmann, F

    M. Esmann, F. R. Lamberti, A. Harouri, L. Lanco, I. Sagnes, I. Favero, G. Aubin, C. Gomez-Carbonell, A. Lemaˆ ıtre, O. Krebs, P. Senellart, and N. D. Lanzillotti-Kimura. Brillouin scattering in hybrid optophononic Bragg micropillar resonators at 300 GHz.Op- tica, 6(7):854, July 2019

  67. [75]

    Cardozo De Oliveira, Martin Es- mann, and Norberto Daniel Lanzillotti-Kimura

    Anne Rodriguez, Elham Mehdi, Priya Priya, Edson R. Cardozo De Oliveira, Martin Es- mann, and Norberto Daniel Lanzillotti-Kimura. Polarization-controlled Brillouin scattering in elliptical optophononic resonators.Optics Express, 32:41102, November 2024

  68. [76]

    Doster, S

    J. Doster, S. Hoenl, H. Lorenz, P. Paulitschke, and E. M. Weig. Collective dynamics of strain-coupled nanomechanical pillar resonators.Nature Communications, 10(1):5246, November 2019

  69. [77]

    Kuhlmann, Davide Cadeddu, Jean-Michel G´ erard, Julien Claudon, Martino Poggio, and Richard J

    Mathieu Munsch, Andreas V. Kuhlmann, Davide Cadeddu, Jean-Michel G´ erard, Julien Claudon, Martino Poggio, and Richard J. Warburton. Resonant driving of a single photon emitter embedded in a mechanical oscillator.Nature Communications, 8(1):76, July 2017

  70. [78]

    Ortiz, F

    O. Ortiz, F. Pastier, A. Rodriguez, Priya, A. Lemaitre, C. Gomez-Carbonell, I. Sagnes, A. Harouri, P. Senellart, V. Giesz, M. Esmann, and N. D. Lanzillotti-Kimura. Fiber- integrated microcavities for efficient generation of coherent acoustic phonons.Applied Physics Letters, 11...

  71. [79]

    Kuznetsov, Ignacio Carraro-Haddad, Gonzalo Usaj, Klaus Biermann, Ale- jandro Fainstein, and Paulo V

    Alexander S. Kuznetsov, Ignacio Carraro-Haddad, Gonzalo Usaj, Klaus Biermann, Ale- jandro Fainstein, and Paulo V. Santos. Ground-state exciton–polariton condensation via coherent Floquet driving.Nature Photonics, March 2026

  72. [80]

    Arregui, O

    G. Arregui, O. Ort´ ız, M. Esmann, C. M. Sotomayor-Torres, C. Gomez-Carbonell, O. Mau- guin, B. Perrin, A. Lemaˆ ıtre, P. D. Garc´ ıa, and N. D. Lanzillotti-Kimura. Coherent gen- eration and detection of acoustic phonons in topological nanocavities.APL Photonics, 4(3):030805, ...

  73. [81]

    N. D. Lanzillotti-Kimura, A. Fainstein, A. Huynh, B. Perrin, B. Jusserand, A. Miard, and A. Lemaˆ ıtre. Coherent Generation of Acoustic Phonons in an Optical Microcavity.Physical Review Letters, 99(21):217405, November 2007

  74. [82]

    Xiang, A

    C. Xiang, A. Rodriguez, E.R. Cardozo de Oliveira, L. Le Gratiet, I. Sagnes, M. Morassi, A. Lemaˆ ıtre, and N.D. Lanzillotti-Kimura. Elliptical micropillars for efficient generation and detection of coherent acoustic phonons.Phys. Rev. Appl., 22:014069, 2024

  75. [83]

    Kuznetsov, Alberto Hern´ andez-M´ ınguez, Abbes Tahraoui, Klaus Biermann, and Paulo V

    Antonio Crespo-Poveda, Alexander S. Kuznetsov, Alberto Hern´ andez-M´ ınguez, Abbes Tahraoui, Klaus Biermann, and Paulo V. Santos. GHz guided optomechanics in planar semiconductor microcavities.Optica, 9(2):160, February 2022

  76. [84]

    Kuznetsov, Diego H

    Alexander S. Kuznetsov, Diego H. O. Machado, Klaus Biermann, and Paulo V. Santos. Electrically Driven Microcavity Exciton-Polariton Optomechanics at 20 GHz.Physical Review X, 11(2):021020, April 2021

  77. [85]

    V. S. Vlasov, A. V. Golov, L. N. Kotov, V. I. Shcheglov, A. M. Lomonosov, and V. V. Tem- nov. The Modern Problems of Ultrafast Magnetoacoustics (Review).Acoustical Physics, 68(1):18–47, February 2022

  78. [86]

    High- Order Nanowire Resonances for High-Frequency, Large-Coupling-Strength Quantum Dot Hybrid Nanomechanics.ACS Photonics, 11:1352–1358, 2024

    Rana Tanos, Hajer Tlili, Yoann Cur´ e, Matteo Finazzer, Alberto Artioli, Saptarshi Kotal, Yann Genuist, Pierre Verlot, Jo¨ el Bleuse, Jean-Michel G´ erard, and Julien Claudon. High- Order Nanowire Resonances for High-Frequency, Large-Coupling-Strength Quantum Dot Hybrid Nanome...

  79. [87]

    Interfacing quantum emitters with propagating surface acoustic waves.Journal of Physics D: Applied Physics, 51(37):373001, September 2018

    Matthias Weiß and Hubert J Krenner. Interfacing quantum emitters with propagating surface acoustic waves.Journal of Physics D: Applied Physics, 51(37):373001, September 2018

  80. [88]

    B¨ uhler, Matthias Weiß, Antonio Crespo-Poveda, Emeline D

    Dominik D. B¨ uhler, Matthias Weiß, Antonio Crespo-Poveda, Emeline D. S. Nysten, Jonathan J. Finley, Kai M¨ uller, Paulo V. Santos, Mauricio M. De Lima, and Hubert J. Krenner. On-chip generation and dynamic piezo-optomechanical rotation of single photons. Nature Communications...

  81. [89]

    Acoustic solitons: A robust tool to investigate the generation and detection of ultrafast acoustic waves.Physical Review B, 95(6):064306, February 2017

    Emmanuel P´ eronne, Nicolas Chuecos, Laura Thevenard, and Bernard Perrin. Acoustic solitons: A robust tool to investigate the generation and detection of ultrafast acoustic waves.Physical Review B, 95(6):064306, February 2017

  82. [90]

    Generation and detection of acoustic solitons in crystalline slabs by laser ultrasonics.Ultrasonics, 44:e1203–e1207, December 2006

    Emmanuel P´ eronne and Bernard Perrin. Generation and detection of acoustic solitons in crystalline slabs by laser ultrasonics.Ultrasonics, 44:e1203–e1207, December 2006

  83. [91]

    Emeline D. S. Nysten, Armando Rastelli, and Hubert J. Krenner. A hybrid (Al)GaAs- LiNbO3 surface acoustic wave resonator for cavity quantum dot optomechanics.Applied Physics Letters, 117(12):121106, September 2020

  84. [92]

    E. R. Cardozo de Oliveira, A. Pfenning, E. D. Guarin Castro, M. D. Teodoro, E. C. dos Santos, V. Lopez-Richard, G. E. Marques, L. Worschech, F. Hartmann, and S. H¨ ofling. 16 Electroluminescence on-off ratio control of n-i-n GaAs/AlGaAs-based resonant tunneling structures.Phys...

  85. [93]

    Cardozo De Oliveira, A

    E.R. Cardozo De Oliveira, A. Naranjo, A. Pfenning, V. Lopez-Richard, G.E. Marques, L. Worschech, F. Hartmann, S. H¨ ofling, and M.D. Teodoro. Determination of Carrier Den- sity and Dynamics via Magnetoelectroluminescence Spectroscopy in Resonant-Tunneling Diodes.Physical Revie...

  86. [94]

    Thevenard, E

    L. Thevenard, E. Peronne, C. Gourdon, C. Testelin, M. Cubukcu, E. Charron, S. Vincent, A. Lemaˆ ıtre, and B. Perrin. Effect of picosecond strain pulses on thin layers of the fer- romagnetic semiconductor (Ga,Mn)(As,P).Physical Review B, 82(10):104422, September 2010. 17 Figure...

Pith tools

Reviewed June 30, 2026 · model on record in the stance chip above.