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arxiv: 1202.5809 · v5 · pith:6O7LTKUOnew · submitted 2012-02-27 · 🌀 gr-qc · astro-ph.HE· hep-ph· hep-th

Dynamical Boson Stars

Pith reviewed 2026-05-17 23:32 UTC · model grok-4.3

classification 🌀 gr-qc astro-ph.HEhep-phhep-th
keywords boson starsscalar fieldsgeneral relativitydark matterblack hole mimickersdynamical evolutionsoliton solutionsgeons
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The pith

Boson stars are stable scalar field configurations that persist in dynamical general relativity and serve as dark matter sources or black hole mimickers.

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

The paper reviews how boson stars arise as particle-like solutions from coupling a scalar field to Einstein's equations. It covers their varieties, how they maintain localized energy under time evolution, and their roles in models ranging from dark matter to binary mergers and higher-dimensional black holes. A sympathetic reader cares because these objects supply concrete, non-singular alternatives to point particles or horizons in gravitational physics. The discussion focuses on recent numerical work that evolves the configurations dynamically rather than treating them as static equilibria.

Core claim

Boson stars are solutions to the Einstein-scalar field equations that form stable, non-dispersing bundles of energy; they remain localized and persist under dynamical evolution, enabling their use as dark matter candidates, black hole mimickers, simplified binary systems, and probes for black holes in higher dimensions possessing only a single Killing vector.

What carries the argument

The coupled Einstein-Klein-Gordon system for a complex scalar field with a suitable potential, which yields soliton-like boson star solutions that can be evolved numerically in full general relativity.

Load-bearing premise

Scalar field configurations can form stable, non-dispersing, localized energy bundles that persist under dynamical evolution in general relativity.

What would settle it

Numerical evolution of a broad family of boson star initial data that shows rapid dispersal or collapse under generic small perturbations.

read the original abstract

The idea of stable, localized bundles of energy has strong appeal as a model for particles. In the 1950s John Wheeler envisioned such bundles as smooth configurations of electromagnetic energy that he called {\em geons}, but none were found. Instead, particle-like solutions were found in the late 1960s with the addition of a scalar field, and these were given the name {\em boson stars}. Since then, boson stars find use in a wide variety of models as sources of dark matter, as black hole mimickers, in simple models of binary systems, and as a tool in finding black holes in higher dimensions with only a single killing vector. We discuss important varieties of boson stars, their dynamic properties, and some of their uses, concentrating on recent efforts.

Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, simulated authors' rebuttal, and a circularity audit. Tearing a paper down is the easy half of reading it; the pith above is the substance, this is the friction.

Referee Report

0 major / 1 minor

Summary. The manuscript is a review of boson stars as localized, stable solutions to the Einstein-Klein-Gordon system in general relativity. It traces their conceptual origin from Wheeler's geons, describes important varieties of boson star solutions, reviews their dynamical properties and stability under evolution, and surveys applications including as dark matter candidates, black hole mimickers, simplified binary system models, and tools for constructing higher-dimensional black holes possessing only a single Killing vector, with emphasis on recent developments.

Significance. If the reviewed numerical results on stable branches and dynamical evolution hold, the paper provides a useful consolidation of the literature that highlights the broad applicability of boson stars across gravitational physics. It explicitly builds on and credits the body of prior numerical work establishing stability ranges and dynamical behavior, offering a reference point for researchers exploring compact-object alternatives and reduced-symmetry spacetimes.

minor comments (1)
  1. [Abstract] Abstract: the phrase 'concentrating on recent efforts' is vague; a single sentence indicating the time frame or key topics (e.g., post-2000 numerical evolutions or specific applications) would improve reader orientation without lengthening the abstract.

Simulated Author's Rebuttal

2 responses · 0 unresolved

We thank the referee for the positive assessment of our review on dynamical boson stars and for recommending minor revision. The report accurately summarizes the manuscript's scope and contributions. We address the provided comments below.

read point-by-point responses
  1. Referee: The manuscript is a review of boson stars as localized, stable solutions to the Einstein-Klein-Gordon system in general relativity. It traces their conceptual origin from Wheeler's geons, describes important varieties of boson star solutions, reviews their dynamical properties and stability under evolution, and surveys applications including as dark matter candidates, black hole mimickers, simplified binary system models, and tools for constructing higher-dimensional black holes possessing only a single Killing vector, with emphasis on recent developments.

    Authors: We appreciate the referee's accurate and concise summary of the paper. This description correctly reflects the structure and focus of the review, including the emphasis on recent developments in applications. No revision is required in response to this summary. revision: no

  2. Referee: REFEREE RECOMMENDATION: minor_revision

    Authors: We accept the recommendation for minor revision. We will update the manuscript to incorporate any specific minor suggestions once provided, such as clarifications or additional references if needed. revision: yes

Circularity Check

0 steps flagged

Review paper with no new derivation chain or self-referential predictions

full rationale

This manuscript is a review summarizing established results on boson star solutions to the Einstein-Klein-Gordon system, their varieties, dynamic properties, and applications. It cites prior independent literature for numerical evidence of stable branches and does not introduce or derive new predictions, fitted parameters, or uniqueness theorems within the paper itself. The central discussion of uses (dark matter, mimickers, binaries) presupposes existence of stable configurations but relies on external benchmarks rather than reducing any claim to inputs defined or fitted here. No load-bearing step reduces by construction to self-citation or ansatz introduced in this work.

Axiom & Free-Parameter Ledger

0 free parameters · 1 axioms · 0 invented entities

The review rests on standard general relativity and scalar field theory from the cited literature; no new free parameters or invented entities are introduced in this manuscript.

axioms (1)
  • domain assumption Einstein's field equations govern the spacetime dynamics of the scalar field configurations
    Invoked throughout the discussion of boson star solutions and their stability.

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Forward citations

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Reference graph

Works this paper leans on

299 extracted references · 299 canonical work pages · cited by 18 Pith papers · 191 internal anchors

  1. [1]

    Observation of a new particle in the search for the Standard Model Higgs boson with the ATLAS detector at the LHC

    Aad G, et al. (2012) Observation of a new particle in the search for the standard model H iggs boson with the ATLAS detector at the LHC . Phys Lett B 716:1--29. doi:10.1016/j.physletb.2012.08.020. https://arxiv.org/abs/1207.7214 arXiv:1207.7214 [hep-ex]

  2. [2]

    Observation of Gravitational Waves from a Binary Black Hole Merger

    Abbott BP, et al. (2016 a ) Observation of gravitational waves from a binary black hole merger. Phys Rev Lett 116:061102. doi:10.1103/PhysRevLett.116.061102. https://arxiv.org/abs/1602.03837 arXiv:1602.03837 [gr-qc]

  3. [3]

    Tests of general relativity with GW150914

    Abbott BP, et al. (2016 b ) Tests of general relativity with GW150914 . Phys Rev Lett 116:221101. doi:10.1103/PhysRevLett.116.221101. https://arxiv.org/abs/1602.03841 arXiv:1602.03841 [gr-qc]

  4. [4]

    Exploring the Sensitivity of Next Generation Gravitational Wave Detectors

    Abbott BP, et al. (2017) Exploring the sensitivity of next generation gravitational wave detectors. Class Quantum Grav 34:044001. doi:10.1088/1361-6382/aa51f4. https://arxiv.org/abs/1607.08697 arXiv:1607.08697 [astro-ph.IM]

  5. [5]

    Phys Rev D 105:102001

    Abbott R, et al (2022) All-sky search for gravitational wave emission from scalar boson clouds around spinning black holes in LIGO O3 data. Phys Rev D 105:102001. doi:10.1103/PhysRevD.105.102001

  6. [6]

    GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run

    Abbott R, et al. (2021) GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run . arXiv e-prints https://arxiv.org/abs/2111.03606 arXiv:2111.03606 [gr-qc]

  7. [7]

    A numerical approach to finding general stationary vacuum black holes

    Adam A, Kitchen S, Wiseman T (2012) A numerical approach to finding general stationary vacuum black holes . Class Quantum Grav 29:165002. doi:10.1088/0264-9381/29/16/165002. https://arxiv.org/abs/1105.6347 arXiv:1105.6347 [gr-qc]

  8. [8]

    Compact boson stars in K field theories

    Adam C, Grandi N, Klimas P, S \' a nchez-Guill \' e n J, Wereszczy \' n ski A (2010) Compact boson stars in k field theories. Gen Relativ Gravit 42:2663--2701. doi:10.1007/s10714-010-1006-4. https://arxiv.org/abs/0908.0218 arXiv:0908.0218 [hep-th]

  9. [9]

    arXiv e-prints https://arxiv.org/abs/2203.16558 arXiv:2203.16558 [gr-qc]

    Adam C, Castelo J, Mart\' n-Caro AG, Huidobro M, V\'azquez R, Wereszczynski A (2022) Universal relations for rotating Boson Stars . arXiv e-prints https://arxiv.org/abs/2203.16558 arXiv:2203.16558 [gr-qc]

  10. [10]

    Boson stars with repulsive selfinteractions

    Agnihotri P, Schaffner-Bielich J, Mishustin IN (2009) Boson stars with repulsive self-interactions. Phys Rev D 79:084033. doi:10.1103/PhysRevD.79.084033. https://arxiv.org/abs/0812.2770 arXiv:0812.2770

  11. [11]

    Galactic Halos and Black Holes in Non-Canonical Scalar Field Theories

    Akhoury R, Gauthier CS (2008) Galactic halos and black holes in non-canonical scalar field theories. ArXiv e-prints https://arxiv.org/abs/0804.3437 arXiv:0804.3437 [hep-th]

  12. [12]

    First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole

    Akiyama K, et al. (2019) First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole . Astrophys J Lett 875:L1. doi:10.3847/2041-8213/ab0ec7. https://arxiv.org/abs/1906.11238 arXiv:1906.11238 [astro-ph.GA]

  13. [13]

    (2022) First Sagittarius A* Event Horizon Telescope Results

    Akiyama K, et al. (2022) First Sagittarius A* Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole in the Center of the Milky Way . Astrophys J Lett 930:L12. doi:10.3847/2041-8213/ac6674

  14. [14]

    Oxford University Press, Oxford; New York

    Alcubierre M (2008) Introduction to 3+1 Numerical Relativity, International Series of Monographs on Physics, vol 140. Oxford University Press, Oxford; New York

  15. [15]

    Numerical studies of Phi^2-Oscillatons

    Alcubierre M, Becerril R, Guzm \' a n FS, Matos T, N \' u \ n ez D, Ure \ n a-L \' o pez LA (2003) Numerical studies of ^ 2 -oscillatons. Class Quantum Grav 20:2883--2903. doi:10.1088/0264-9381/20/13/332. https://arxiv.org/abs/gr-qc/0301105 arXiv:gr-qc/0301105

  16. [16]

    Dynamic transition to spontaneous scalarization in boson stars

    Alcubierre M, Degollado JC, N \' u \ n ez D, Ruiz M, Salgado M (2010) Dynamic transition to spontaneous scalarization in boson stars. Phys Rev D 81:124018. doi:10.1103/PhysRevD.81.124018. https://arxiv.org/abs/1003.4767 arXiv:1003.4767 [gr-qc]

  17. [17]

    Class Quantum Grav 35:19LT01

    Alcubierre M, Barranco J, Bernal A, Degollado JC, Diez-Tejedor A, Megevand M, Nunez D, Sarbach O (2018) -Boson stars . Class Quantum Grav 35:19LT01. doi:10.1088/1361-6382/aadcb6. https://arxiv.org/abs/1805.11488 arXiv:1805.11488 [gr-qc]

  18. [18]

    Class Quantum Grav 36:215013

    Alcubierre M, Barranco J, Bernal A, Degollado JC, Diez-Tejedor A, Megevand M, N\'u\ nez D, Sarbach O (2019) Dynamical evolutions of -boson stars in spherical symmetry . Class Quantum Grav 36:215013. doi:10.1088/1361-6382/ab4726. https://arxiv.org/abs/1906.08959 arXiv:1906.08959 [gr-qc]

  19. [19]

    Class Quantum Grav 38:174001

    Alcubierre M, Barranco J, Bernal A, Degollado JC, Diez-Tejedor A, Megevand M, N\'u\ nez D, Sarbach O (2021) On the linear stability of -boson stars with respect to radial perturbations . Class Quantum Grav 38:174001. doi:10.1088/1361-6382/ac0160. https://arxiv.org/abs/2103.15012 arXiv:2103.15012 [gr-qc]

  20. [20]

    Class Quantum Grav 39:094001

    Alcubierre M, Barranco J, Bernal A, Degollado JC, Diez-Tejedor A, Jaramillo V, Megevand M, N\'u\ nez D, Sarbach O (2022) Extreme -boson stars . Class Quantum Grav 39:094001. doi:10.1088/1361-6382/ac5fc2. https://arxiv.org/abs/2112.04529 arXiv:2112.04529 [gr-qc]

  21. [21]

    PhD thesis, Universitat de les Illes Balears, Palma

    Alic D (2009) Theoretical issues in numerical relativity simulations. PhD thesis, Universitat de les Illes Balears, Palma. ://hdl.handle.net/10803/9438

  22. [22]

    Constraining scalar fields with stellar kinematics and collisional dark matter

    Amaro-Seoane P, Barranco J, Bernal A, Rezzolla L (2010) Constraining scalar fields with stellar kinematics and collisional dark matter. J Cosmol Astropart Phys 2010(11):002. doi:10.1088/1475-7516/2010/11/002. https://arxiv.org/abs/1009.0019 arXiv:1009.0019 [astro-ph.CO]

  23. [23]

    JCAP 08(08):014

    Amin MA, Jain M, Karur R, Mocz P (2022) Small-scale structure in vector dark matter . JCAP 08(08):014. doi:10.1088/1475-7516/2022/08/014. https://arxiv.org/abs/2203.11935 arXiv:2203.11935 [astro-ph.CO]

  24. [24]

    Phys Lett B 811:135944

    Annulli L, Cardoso V, Vicente R (2020) Stirred and shaken: Dynamical behavior of boson stars and dark matter cores . Phys Lett B 811:135944. doi:10.1016/j.physletb.2020.135944. https://arxiv.org/abs/2007.03700 arXiv:2007.03700 [astro-ph.HE]

  25. [25]

    Impact of other scalar fields on oscillons after hilltop inflation

    Antusch S, Orani S (2016) Impact of other scalar fields on oscillons after hilltop inflation. J Cosmol Astropart Phys 2016(03):026. doi:10.1088/1475-7516/2016/03/026. https://arxiv.org/abs/1511.02336 arXiv:1511.02336 [hep-ph]

  26. [26]

    Gravitational waves from oscillons after inflation

    Antusch S, Cefala F, Orani S (2017) Gravitational waves from oscillons after inflation. Phys Rev Lett 118:011303. doi:10.1103/PhysRevLett.118.011303. https://arxiv.org/abs/1607.01314 arXiv:1607.01314 [astro-ph.CO]

  27. [27]

    Charge-induced force-noise on free-falling test masses: results from LISA Pathfinder

    Armano M, et al. (2017) Charge-induced force-noise on free-falling test masses: results from LISA pathfinder. Phys Rev Lett 118:171101. doi:10.1103/PhysRevLett.118.171101. https://arxiv.org/abs/1702.04633 arXiv:1702.04633 [astro-ph.IM]

  28. [28]

    The Dynamics of General Relativity

    Arnowitt R, Deser S, Misner CW (1962) The dynamics of general relativity. In: Witten L (ed) Gravitation: An Introduction to Current Research. Wiley, New York; London, pp 227--265. doi:10.1007/s10714-008-0661-1. https://arxiv.org/abs/gr-qc/0405109 arXiv:gr-qc/0405109

  29. [29]

    Spinning Q-balls in the complex signum-Gordon model

    Arod \' z H, Karkowski J, \' S wierczy \' n ski Z (2009) Spinning Q -balls in the complex signum- G ordon model. Phys Rev D 80:067702. doi:10.1103/PhysRevD.80.067702. https://arxiv.org/abs/0907.2801 arXiv:0907.2801 [hep-th]

  30. [30]

    Phys Rev D 101:083014

    Arvanitaki A, Dimopoulos S, Galanis M, Lehner L, Thompson JO, Van Tilburg K (2020) Large-misalignment mechanism for the formation of compact axion structures: Signatures from the QCD axion to fuzzy dark matter . Phys Rev D 101:083014. doi:10.1103/PhysRevD.101.083014. https://arxiv.org/abs/1909.11665 arXiv:1909.11665 [astro-ph.CO]

  31. [31]

    Boson stars with negative cosmological constant

    Astefanesei D, Radu E (2003) Boson stars with negative cosmological constant. Nucl Phys B 665:594--622. doi:10.1016/S0550-3213(03)00482-6. https://arxiv.org/abs/gr-qc/0309131 arXiv:gr-qc/0309131

  32. [32]

    Boson Stars in Higher Derivative Gravity

    Baibhav V, Maity D (2017) Boson stars in higher-derivative gravity. Phys Rev D 95:024027. doi:10.1103/PhysRevD.95.024027. https://arxiv.org/abs/1609.07225 arXiv:1609.07225 [gr-qc]

  33. [33]

    A Numerical Study of Boson Stars: Einstein Equations with a Matter Source

    Balakrishna J (1999) A numerical study of boson stars: E instein equations with a matter source. PhD thesis, Washington University, St. Louis. https://arxiv.org/abs/gr-qc/9906110 arXiv:gr-qc/9906110

  34. [34]

    Balakrishna J, Seidel E, Suen WM (1998) Dynamical evolution of boson stars. II . excited states and self-interacting fields. Phys Rev D 58:104004. doi:10.1103/PhysRevD.58.104004. https://arxiv.org/abs/gr-qc/9712064 arXiv:gr-qc/9712064

  35. [35]

    Class Quantum Grav 23:2631--2652

    Balakrishna J, Bondarescu R, Daues G, Guzm \' a n FS, Seidel E (2006) Evolution of 3d boson stars with waveform extraction. Class Quantum Grav 23:2631--2652. doi:10.1088/0264-9381/23/7/024. https://arxiv.org/abs/gr-qc/602078 arXiv:gr-qc/602078

  36. [36]

    Numerical Simulations of Oscillating Soliton Stars: Excited States in Spherical Symmetry and Ground State Evolutions in 3D

    Balakrishna J, Bondarescu R, Daues G, Bondarescu M (2008) Numerical simulations of oscillating soliton stars: Excited states in spherical symmetry and ground state evolutions in 3d. Phys Rev D 77:024028. doi:10.1103/PhysRevD.77.024028. https://arxiv.org/abs/0710.4131 arXiv:0710.4131 [gr-qc]

  37. [37]

    J Comput Phys 230:5449--5469

    Bao W, Dong X (2011) Numerical methods for computing ground states and dynamics of nonlinear relativistic hartree equation for boson stars. J Comput Phys 230:5449--5469. doi:10.1016/j.jcp.2011.03.051

  38. [38]

    Living Rev Relativ 14:3

    Barcel \'o C, Liberati S, Visser M (2011) Analogue Gravity . Living Rev Relativ 14:3. doi:10.12942/lrr-2011-3

  39. [39]

    Barranco J, Bernal A (2011 a ) Constraining scalar field properties with boson stars as black hole mimickers. In: Ure \ n a-L \' o pez LA, Morales-T \' e cotl HA, Linares-Romero R, Santos-Rodr \' guez E, Estrada-Jim \' e nez S (eds) VIII Workshop of the Gravitation and Mathematical Physics Division of the Mexican Physical Society. AIP Conference Proceedin...

  40. [40]

    Self-gravitating system made of axions

    Barranco J, Bernal A (2011 b ) Self-gravitating system made of axions. Phys Rev D 83:043525. doi:10.1103/PhysRevD.83.043525. https://arxiv.org/abs/1001.1769 arXiv:1001.1769 [astro-ph.CO]

  41. [41]

    Are black holes a serious threat to scalar field dark matter models?

    Barranco J, Bernal A, Degollado JC, Diez-Tejedor A, Megevand M, Alcubierre M, N \' u \ n ez D, Sarbach O (2011) Are black holes a serious threat to scalar field dark matter models? Phys Rev D 84:083008. doi:10.1103/PhysRevD.84.083008. https://arxiv.org/abs/1108.0931 arXiv:1108.0931 [gr-qc]

  42. [42]

    Phys Rev Lett 61:141--144

    Bartnik R, McKinnon J (1988) Particlelike solutions of the E instein-- Y ang-- M ills equations. Phys Rev Lett 61:141--144. doi:10.1103/PhysRevLett.61.141

  43. [43]

    Small Hairy Black Holes in Global AdS Spacetime

    Basu P, Bhattacharya J, Bhattacharyya S, Loganayagam R, Minwalla S, Umesh V (2010) Small hairy black holes in global AdS spacetime. J High Energy Phys 2010(10):045. doi:10.1007/JHEP10(2010)045. https://arxiv.org/abs/1003.3232 arXiv:1003.3232 [hep-th]

  44. [44]

    Q-ball Dynamics

    Battye RA, Sutcliffe PM (2000) Q -ball dynamics. Nucl Phys B 590:329--363. doi:10.1016/S0550-3213(00)00506-X. https://arxiv.org/abs/hep-th/0003252 arXiv:hep-th/0003252

  45. [45]

    On the Numerical Integration of Einstein's Field Equations

    Baumgarte TW, Shapiro SL (1999) Numerical integration of E instein's field equations. Phys Rev D 59:024007. doi:10.1103/PhysRevD.59.024007. https://arxiv.org/abs/gr-qc/9810065 arXiv:gr-qc/9810065 [gr-qc]

  46. [46]

    Cambridge University Press, Cambridge; New York

    Baumgarte TW, Shapiro SL (2010) Numerical Relativity: Solving E instein's Equations on the Computer. Cambridge University Press, Cambridge; New York

  47. [47]

    Obtaining mass parameters of compact objects from red-blue shifts emitted by geodesic particles around them

    Becerril R, Valdez-Alvarado S, Nucamendi U (2016) Obtaining mass parameters of compact objects from redshifts and blueshifts emitted by geodesic particles around them. Phys Rev D 94:124024. doi:10.1103/PhysRevD.94.124024. https://arxiv.org/abs/1610.01718 arXiv:1610.01718 [gr-qc]

  48. [48]

    Realistic neutron star constraints on bosonic asymmetric dark matter

    Bell NF, Melatos A, Petraki K (2013) Realistic neutron star constraints on bosonic asymmetric dark matter. Phys Rev D 87:123507. doi:10.1103/PhysRevD.87.123507. https://arxiv.org/abs/1301.6811 arXiv:1301.6811 [hep-ph]

  49. [49]

    Scalar Field Dark Matter: head-on interaction between two structures

    Bernal A, Guzm \' a n FS (2006 a ) Scalar field dark matter: Head-on interaction between two structures. Phys Rev D 74:103002. doi:10.1103/PhysRevD.74.103002. https://arxiv.org/abs/astro-ph/0610682 arXiv:astro-ph/0610682

  50. [50]

    Scalar Field Dark Matter: non-spherical collapse and late time behavior

    Bernal A, Guzm \' a n FS (2006 b ) Scalar field dark matter: Nonspherical collapse and late-time behavior. Phys Rev D 74:063504. doi:10.1103/PhysRevD.74.063504. https://arxiv.org/abs/astro-ph/0608523 arXiv:astro-ph/0608523

  51. [51]

    Multi-state Boson Stars

    Bernal A, Barranco J, Alic D, Palenzuela C (2010) Multistate boson stars. Phys Rev D 81:044031. doi:10.1103/PhysRevD.81.044031. https://arxiv.org/abs/0908.2435 arXiv:0908.2435 [gr-qc]

  52. [52]

    Supermassive black holes or boson stars? Hair counting with gravitational wave detectors

    Berti E, Cardoso V (2006) Supermassive black holes or boson stars? hair counting with gravitational wave detectors. Int J Mod Phys D 15:2209--2216. doi:10.1142/S0218271806009637. https://arxiv.org/abs/gr-qc/0605101 arXiv:gr-qc/0605101

  53. [53]

    Numerical Relativity and High Energy Physics: Recent Developments

    Berti E, Cardoso V, Crispino LCB, Gualtieri L, Herdeiro C, Sperhake U (2016) Numerical relativity and high energy physics: Recent developments. Int J Mod Phys D 25:1641022. doi:10.1142/S0218271816410224, proceedings, 3rd Amazonian Symposium on Physics and 5th NRHEP Network Meeting is approaching: Celebrating 100 Years of General Relativity: Belem, Brazil....

  54. [54]

    Testing General Relativity with Present and Future Astrophysical Observations

    Berti E, et al. (2015) Testing general relativity with present and future astrophysical observations. Class Quantum Grav 32:243001. doi:10.1088/0264-9381/32/24/243001. https://arxiv.org/abs/1501.07274 arXiv:1501.07274 [gr-qc]

  55. [55]

    Gravitational Waves from Dark Boson Star binary mergers

    Bezares M, Palenzuela C (2018) Gravitational Waves from Dark Boson Star binary mergers . Class Quantum Grav 35(23):234002. doi:10.1088/1361-6382/aae87c. https://arxiv.org/abs/1808.10732 arXiv:1808.10732 [gr-qc]

  56. [56]

    On the final fate of compact boson star mergers

    Bezares M, Palenzuela C, Bona C (2017) Final fate of compact boson star mergers. Phys Rev D 95:124005. doi:10.1103/PhysRevD.95.124005. https://arxiv.org/abs/1705.01071 arXiv:1705.01071 [gr-qc]

  57. [57]

    Phys Rev D 100(4):044049

    Bezares M, Vigan\`o D, Palenzuela C (2019) Gravitational wave signatures of dark matter cores in binary neutron star mergers by using numerical simulations . Phys Rev D 100(4):044049. doi:10.1103/PhysRevD.100.044049. https://arxiv.org/abs/1905.08551 arXiv:1905.08551 [gr-qc]

  58. [58]

    Phys Rev D 105(6):064067

    Bezares M, Bo s kovi\'c M, Liebling S, Palenzuela C, Pani P, Barausse E (2022) Gravitational waves and kicks from the merger of unequal mass, highly compact boson stars . Phys Rev D 105(6):064067. doi:10.1103/PhysRevD.105.064067. https://arxiv.org/abs/2201.06113 arXiv:2201.06113 [gr-qc]

  59. [59]

    Boson stars: Chemical potential and quark condensates

    Bhatt JR, Sreekanth V (2009) Boson stars: Chemical potential and quark condensates. ArXiv e-prints https://arxiv.org/abs/0910.1972 arXiv:0910.1972 [hep-ph]

  60. [60]

    On asymptotically flat solutions of Einstein's equations periodic in time II. Spacetimes with scalar-field sources

    Bi c \' a k J, Scholtz M, Tod P (2010) On asymptotically flat solutions of E instein's equations periodic in time II . spacetimes with scalar-field sources. Class Quantum Grav 27:175011. doi:10.1088/0264-9381/27/17/175011. https://arxiv.org/abs/1008.0248 arXiv:1008.0248 [gr-qc]

  61. [61]

    Method for detecting a boson star at Sgr A* through gravitational lensing

    Bin-Nun AY (2013) Method for detecting a boson star at Sgr A* through gravitational lensing. ArXiv e-prints https://arxiv.org/abs/1301.1396 arXiv:1301.1396 [gr-qc]

  62. [62]

    On weakly turbulent instability of anti-de Sitter space

    Bizo \' n P, Rostworowski A (2011) On weakly turbulent instability of anti-de S itter space. Phys Rev Lett 107:031102. doi:10.1103/PhysRevLett.107.031102. https://arxiv.org/abs/1104.3702 arXiv:1104.3702 [gr-qc]

  63. [63]

    Phys Lett B 793:161--168

    Bl\'azquez-Salcedo JL, Knoll C, Radu E (2019) Boson and Dirac stars in D 4 dimensions . Phys Lett B 793:161--168. doi:10.1016/j.physletb.2019.04.035. https://arxiv.org/abs/1902.05851 arXiv:1902.05851 [gr-qc]

  64. [64]

    In: AAS 219th Meeting

    Boehle A, Ghez A, Schoedel R, Yelda S, Meyer L (2012) New orbital analysis of stars at the G alactic center using speckle holography. In: AAS 219th Meeting. Bull. Am. Astron. Soc., vol 44. American Astronomical Society, Washington, DC

  65. [65]

    JETP Lett 25:107--110

    Bogolyubski IL, Makhan'kov VG (1977) Dynamics of spherically symmetrical pulsons of large amplitude. JETP Lett 25:107--110

  66. [66]

    Springer, Berlin; New York

    Bona C, Palenzuela-Luque C, Bona-Casas C (2009) Elements of Numerical Relativity and Relativistic Hydrodynamics: From E instein's Equations to Astrophysical Simulations, Lecture Notes in Physics, vol 783, 2nd edn. Springer, Berlin; New York. doi:10.1007/978-3-642-01164-1

  67. [67]

    Phys Rev Lett 116:141102

    Bosch P, Green SR, Lehner L (2016) Nonlinear evolution and final fate of charged anti-- de Sitter black hole superradiant instability. Phys Rev Lett 116:141102. doi:10.1103/PhysRevLett.116.141102

  68. [68]

    JCAP 02:032

    Bo s kovi\'c M, Barausse E (2022) Soliton boson stars, Q-balls and the causal Buchdahl bound . JCAP 02:032. doi:10.1088/1475-7516/2022/02/032. https://arxiv.org/abs/2111.03870 arXiv:2111.03870 [gr-qc]

  69. [69]

    Rev Mod Phys 91:041002

    Braaten E, Zhang H (2019) Colloquium : The physics of axion stars . Rev Mod Phys 91:041002. doi:10.1103/RevModPhys.91.041002

  70. [70]

    Class Quantum Grav 19:6359--6376

    Brady PR, Choptuik MW, Gundlach C, Neilsen DW (2002) Black-hole threshold solutions in stiff fluid collapse. Class Quantum Grav 19:6359--6376. doi:10.1088/0264-9381/19/24/306. https://arxiv.org/abs/gr-qc/0207096 arXiv:gr-qc/0207096

  71. [71]

    Constraints on Bosonic Dark Matter From Observations of Old Neutron Stars

    Bramante J, Fukushima K, Kumar J (2013) Constraints on bosonic dark matter from observation of old neutron stars. Phys Rev D 87:055012. doi:10.1103/PhysRevD.87.055012. https://arxiv.org/abs/1301.0036 arXiv:1301.0036 [hep-ph]

  72. [72]

    Wave Dark Matter and the Tully-Fisher Relation

    Bray HL, Goetz AS (2014) Wave dark matter and the T ully- F isher relation. ArXiv e-prints https://arxiv.org/abs/1409.7347 arXiv:1409.7347 [astro-ph.GA]

  73. [73]

    Modeling Wave Dark Matter in Dwarf Spheroidal Galaxies

    Bray HL, Parry AR (2013) Modeling wave dark matter in dwarf spheroidal galaxies. ArXiv e-prints https://arxiv.org/abs/1301.0255 arXiv:1301.0255 [astro-ph.GA]

  74. [74]

    Boson stars, neutron stars and black holes in five dimensions

    Brihaye Y, Delsate T (2016) Boson stars, neutron stars and black holes in five dimensions. ArXiv e-prints https://arxiv.org/abs/1607.07488 arXiv:1607.07488 [gr-qc]

  75. [75]

    Angularly excited and interacting boson stars and Q-balls

    Brihaye Y, Hartmann B (2009) Angularly excited and interacting boson stars and q balls. Phys Rev D 79:064013. doi:10.1103/PhysRevD.79.064013. https://arxiv.org/abs/0812.3968 arXiv:0812.3968 [hep-ph]

  76. [76]

    Minimal boson stars in 5 dimensions: classical instability and existence of ergoregions

    Brihaye Y, Hartmann B (2016) Minimal boson stars in 5 dimensions: classical instability and existence of ergoregions. Class Quantum Grav 33:065002. doi:10.1088/0264-9381/33/6/065002. https://arxiv.org/abs/1509.04534 arXiv:1509.04534 [hep-th]

  77. [77]

    JHEP 09:049

    Brihaye Y, Hartmann B (2019) Spontaneous scalarization of boson stars . JHEP 09:049. doi:10.1007/JHEP09(2019)049. https://arxiv.org/abs/1903.10471 arXiv:1903.10471 [gr-qc]

  78. [78]

    Phys Rev D 105:104063

    Brihaye Y, Hartmann B (2022) Boson stars and black holes with wavy scalar hair . Phys Rev D 105:104063. doi:10.1103/PhysRevD.105.104063. https://arxiv.org/abs/2112.12830 arXiv:2112.12830 [gr-qc]

  79. [79]

    Rotating Boson Stars in Einstein-Gauss-Bonnet gravity

    Brihaye Y, Riedel J (2014) Rotating boson stars in five-dimensional E instein- G auss- B onnet gravity. Phys Rev D 89:104060. doi:10.1103/PhysRevD.89.104060. https://arxiv.org/abs/1310.7223 arXiv:1310.7223 [gr-qc]

  80. [80]

    Spherical Structures in Conformal Gravity and its Scalar-Tensor Extension

    Brihaye Y, Verbin Y (2009) Spherical structures in conformal gravity and its scalar-tensor extension. Phys Rev D 80:124048. doi:10.1103/PhysRevD.80.124048. https://arxiv.org/abs/0907.1951 arXiv:0907.1951 [gr-qc]

Showing first 80 references.