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Theories of quantum gravity based on the holographic principle predict the existence of quantum fluctuations of distance measurements that accumulate and exhibit correlations over macroscopic distances.
‘Observational Signatures of Quantum Gravity in Interferometers’
E. P. Verlinde and K. M. Zurek · 1902
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‘Pattern of perturbations from a coherent quantum inflationary horizon’
C. Hogan · 1908
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‘Quantum gravity, minimum length, and holography’
T. P. Singh · 1910
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‘Spacetime Fluctuations in AdS/CFT’
E. Verlinde and K. M. Zurek · 1911
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‘Gravitation and quantum mechanics of macroscopic objects’
F. Karolyhazy · 1966
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‘Nonrenormalizability of the quantized Dirac-Einstein system’
S. Deser and P. van Nieuwenhuizen · 1974
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‘Black holes in the early Universe’
B. J. Carr and S. W. Hawking · 1974
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‘Mode Calculations in Unstable Resonators with Flowing Saturable Gain. 1:Hermite-Gaussian Expansion’
A. E. Siegman and E. A. Sziklas · 1974
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‘Spacetime foam’
S. Hawking · 1978
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‘Quantum-mechanical noise in an interferometer’
C. M. Caves · 1981
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‘Squeezed states of light’
D. F. Walls · 1983
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A first course in general relativity
B. F. Schutz · 1985
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‘Heating by optical absorption and the performance of interferometric gravitational-wave detectors’
W. Winkler, K. Danzmann, A. Rüdiger, and R. Schilling · 1991
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‘LIMIT TO SPACE-TIME MEASUREMENT’
Y. Jack Ng and H. Van Dam · 1994
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‘Noise due to backscatter off baffles, the nearby wall, and objects at the far end of the beam tube; and recommended actions’
F. E. E and T. K. S · 1994
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‘The World as a Hologram’
L. Susskind · 1995
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‘Quantum gravity and minimum length’
L. J. Garay · 1995
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‘Demonstration of a power-recycled Michelson interferometer with Fabry–Perot arms by frontal modulation’
M. W. Regehr, F. J. Raab, and S. E. Whitcomb · 1995
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‘Proceedings of the Seventh Marcel Grossman Meeting on recent developments in theoretical and experimental general relativity, gravitation, and relativistic field theories’
M. Zucker and S. Whitcomb · 1996
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‘Power recycling in the Garching 30 m prototype interferometer for gravitational-wave detection’
D. Schnier, J. Mizuno, G. Heinzel, H. Lück, A. Rüdiger, R. Schilling, M. Schrempel, W. Winkler, and K. Danzmann · 1997
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‘Introduction to Superstring Theory’
E. Kiritsis · 1998
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‘Gravity-wave interferometers as quantum-gravity detectors’
G. Amelino-Camelia · 1999
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‘A Covariant Entropy Conjecture’
R. Bousso · 1999
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‘Measuring the foaminess of space-time with gravity-wave interferometers’
Y. J. Ng and H. van Dam · 2000
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‘An introduction to Pound–Drever–Hall laser frequency stabilization’
E. D. Black · 2000
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‘A phenomenological description of quantum-gravity-induced space-time noise’
G. Amelino-Camelia · 2001
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‘The holographic principle’
R. Bousso · 2002
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‘Selected topics in Planck-scale physics’
Y. J. Ng · 2003
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‘Quantum Gravity in Everyday Life: General Relativity as an Effective Field Theory’
C. P. Burgess · 2004
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‘Very high frequency gravitational wave background in the universe’
G. S. Bisnovatyi-Kogan and V. N. Rudenko · 2004
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‘Direct Detection of Dark Matter with Space-based Laser Interferometers’
A. W. Adams and J. S. Bloom · 2004
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‘Scale of Quantum Gravity’
T. Han and S. Willenbrock · 2005
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‘Response of LIGO to Gravitational Waves at High Frequencies and in the Vicinity of the FSR (37.5 kHz) (LIGO Document T060237-x0)’ (2005)
M. Rakhmanov · 2005
Cited alongside, same era.
Bayesian Logical Data Analysis for the Physical Sciences: A Comparative Approach with Mathematica® Support
P. Gregory · 2005
Cited alongside, same era.
J. Lough, et al · 2005
Cited alongside, same era.
‘The PVLAS experiment: a 25 year effort to measure vacuum magnetic birefringence’
A. Ejlli, F. Della Valle, U. Gastaldi, G. Messineo, R. Pengo, G. Ruoso, and G. Zavattini · 2005
Cited alongside, same era.
‘Two-mode squeezed vacuum and squeezed light in correlated interferometry’
I. R. Berchera, I. P. Degiovanni, S. Olivares, N. Samantaray, P. Traina, and M. Genovese · 2015
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‘Interferometric tests of Planckian quantum geometry models’
O. Kwon and C. J. Hogan · 2016
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‘The Quantum Black Hole as a Hydrogen Atom: Microstates Without Strings Attached’
G. ’t Hooft · 2016
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‘Black hole unitarity and antipodal entanglement’
G. ’t Hooft · 2016
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‘MHz Gravitational Waves from Short-term Anisotropic Inflation’
A. Ito and J. Soda · 2016
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‘Sound of Dark Matter: Searching for Light Scalars with Resonant-Mass Detectors’
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‘The geometry of small causal diamonds’
G. W. Gibbons and S. N. Solodukhin · 2007
Cited alongside, same era.
‘Gravitational-Wave Stochastic Background from Cosmic Strings’
X. Siemens, V. Mandic, and J. Creighton · 2007
Cited alongside, same era.
‘The GEO 600 core optics’
W. Winkler, K. Danzmann, H. Grote, M. Hewitson, S. Hild, and J. Hough · 2007
Cited alongside, same era.
‘Measurement of Quantum Fluctuations in Geometry’
C. J. Hogan · 2008
Cited alongside, same era.
‘Dimensional Reduction in Quantum Gravity’
G. ’t Hooft · 2009
Cited alongside, same era.
‘DC-readout of a signal-recycled gravitational wave detector’
S. Hild, et al · 2009
Cited alongside, same era.
‘The GEO600 squeezed light source’
H. Vahlbruch, A. Khalaidovski, N. Lastzka, C. Graef, K. Danzmann, and R. Schnabel · 2010
Cited alongside, same era.
A. Arvanitaki, S. Dimopoulos, and K. Van Tilburg · 2016
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‘Enhanced effects of variation of the fundamental constants in laser interferometers and application to dark matter detection’
Y. V. Stadnik and V. V. Flambaum · 2016
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‘The Holometer: An Instrument to Probe Planckian Quantum Geometry’
A. Chou, et al · 2017
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‘Interferometric Constraints on Quantum Geometrical Shear Noise Correlations’
A. Chou, et al · 2017
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‘MHz Gravitational Wave Constraints with Decameter Michelson Interferometers’
A. S. Chou, et al · 2017
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‘Gravitational wave searches for ultralight bosons with LIGO and LISA’
R. Brito, S. Ghosh, E. Barausse, E. Berti, V. Cardoso, I. Dvorkin, A. Klein, and P. Pani · 2017
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‘Statistical Measures of Planck Scale Signal Correlations in Interferometers’
C. J. Hogan and O. Kwon · 2017
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‘Statistical model of exotic rotational correlations in emergent space-time’
C. Hogan, O. Kwon, and J. Richardson · 2017
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‘Gravitational Waves from Primordial Black Hole Mergers’
M. Raidal, V. Vaskonen, and H. Veermäe · 2017
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‘Discreteness of Black Hole Microstates’
G. ’t Hooft · 2018
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‘Laser Interferometers as Dark Matter Detectors’
E. D. Hall, T. C. V. V. Frolov, H. Müller, M. Pospelov, and R. X. Adhikari · 2018
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‘Searching for Dark Photon Dark Matter with Gravitational Wave Detectors’
A. Pierce, K. Riles, and Y. Zhao · 2018
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‘Constraints on the Primordial Black Hole Abundance from the First Advanced LIGO Observation Run Using the Stochastic Gravitational-Wave Background’
S. Wang, Y.-F. Wang, Q.-G. Huang, and T. G. F. Li · 2018
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‘Stimulated axion decay in superradiant clouds around primordial black holes’
J. G. Rosa and T. W. Kephart · 2018
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‘Detecting dark matter waves with precision measurement tools’
A. Derevianko · 2018
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‘Does Spacetime Fluctuate?’ (2019)
K. M. Zurek and E. Verlinde · 2019
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‘Nonlocal entanglement and directional correlations of primordial perturbations on the inflationary horizon’
C. Hogan · 2019
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‘Novel signatures of dark matter in laser-interferometric gravitational-wave detectors’
H. Grote and Y. V. Stadnik · 2019
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‘GWTC-1: A Gravitational-Wave Transient Catalog of Compact Binary Mergers Observed by LIGO and Virgo during the First and Second Observing Runs’
LIGO Scientific Collaboration and Virgo Collaboration, et al · 2019
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‘Searching for ultra-light dark matter with optical cavities’
A. A. Geraci, C. Bradley, D. Gao, J. Weinstein, and A. Derevianko · 2019
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Advanced Interferometric Gravitational-wave Detectors (In 2 Volumes)
H. Grote, D. H. Reitze, and P. R. Saulson · 2019
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‘Quantum-Enhanced Advanced LIGO Detectors in the Era of Gravitational-Wave Astronomy’
M. Tse et al · 2019
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‘Searching for Harmonic Sources Emitting Gravitational Waves at MHz Frequencies’
J. Martinez Garcia Cors and B. L. Kamai · 2020
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‘Dark matter signals on a laser interferometer’
S. Tsuchida, N. Kanda, Y. Itoh, and M. Mori · 2020
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‘Twin beam quantum-enhanced correlated interferometry for testing fundamental physics’
S. T. Pradyumna, E. Losero, I. Ruo-Berchera, P. Traina, M. Zucco, C. S. Jacobsen, U. L. Andersen, I. P. Degiovanni, M. Genovese, and T. Gehring · 2020
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