Fetching the paper…
Reading the bibliography…
The current theories of quantum physics and general relativity on their own do not allow us to study situations in which the gravitational source is quantum.
1903
Earlier work this paper cites.
F. Karolyhazy, Gravitation and quantum mechanics of macroscopic objects, Il Nuovo Cimento A (1965-1970) 42
1966
Earlier work this paper cites.
R. Colella, A. W. Overhauser, and S. A. Werner, Observation of gravitationally induced quantum interference, Phys. Rev. Lett. 34
1975
Earlier work this paper cites.
L. Stodolsky, Matter and Light Wave Interferometry in Gravitational Fields, Gen. Rel. Grav. 11
1979
Earlier work this paper cites.
L. Diósi, A universal master equation for the gravitational violation of quantum mechanics, Physics Letters A 120
1987
Earlier work this paper cites.
L. Diósi, Models for universal reduction of macroscopic quantum fluctuations, Phys. Rev. A 40
1989
Earlier work this paper cites.
J. F. Donoghue, General relativity as an effective field theory: The leading quantum corrections, Phys. Rev. D 50
1994
Earlier work this paper cites.
R. Wald and J. Pfister, Quantum Field Theory in Curved Spacetime and Black Hole Thermodynamics , Chicago Lectures in Physics (University of Chicago Press, 1994)
1994
Earlier work this paper cites.
R. Penrose, On gravity’s role in quantum state reduction, Gen. Rel. Grav. 28
1996
Earlier work this paper cites.
J. Polchinski, C. U. Press, P. Landshoff, D. Nelson, D. Sciama, and S. Weinberg, String Theory , Cambridge Monographs on Mathematical Physics (Cambridge University Press, 1998)
1998
Earlier work this paper cites.
C. Rovelli, Quantum Gravity , Cambridge Monographs on Mathematical Physics (Cambridge University Press, 2004)
2004
Earlier work this paper cites.
K. Hornberger, J. E. Sipe, and M. Arndt, Theory of decoherence in a matter wave talbot-lau interferometer, Phys. Rev. A 70
2004
Earlier work this paper cites.
P. Merriam, Physical laws must be invariant over quantum systems., Physics Essays 19
2006
Earlier work this paper cites.
S. D. Bartlett, T. Rudolph, and R. W. Spekkens, Dialogue concerning two views on quantum coherence: Factist and fictionist, International Journal of Quantum Information 04
2006
Earlier work this paper cites.
B. Lamine, R. Hervé, A. Lambrecht, and S. Reynaud, Ultimate decoherence border for matter-wave interferometry, Phys. Rev. Lett. 96
2006
Earlier work this paper cites.
S. D. Bartlett, T. Rudolph, and R. W. Spekkens, Reference frames, superselection rules, and quantum information, Reviews of Modern Physics 79
2007
Earlier work this paper cites.
2007
Earlier work this paper cites.
M. Maggiore, Gravitational Waves. Vol. 1: Theory and Experiments , Oxford Master Series in Physics (Oxford University Press, 2007)
2007
Earlier work this paper cites.
H. Müller, A. Peters, and S. Chu, A precision measurement of the gravitational redshift by the interference of matter waves, Nature 463
2010
Earlier work this paper cites.
C. M. DeWitt and D. Rickles, The Role of Gravitation in Physics: Report from the 1957 Chapel Hill Conference , ASTIA document (Ed. Open Access, 2011)
2011
Earlier work this paper cites.
H. D. Zeh, Feynman’s interpretation of quantum theory, The European Physical Journal H 36
2011
Earlier work this paper cites.
R. M. Angelo, N. Brunner, S. Popescu, A. J. Short, and P. Skrzypczyk, Physics within a quantum reference frame, Journal of Physics A: Mathematical and Theoretical 44
2011
Earlier work this paper cites.
O. Romero-Isart, Quantum superposition of massive objects and collapse models, Phys. Rev. A 84
2011
Earlier work this paper cites.
R. M. Angelo and A. D. Ribeiro, Kinematics and dynamics in noninertial quantum frames of reference, Journal of Physics A: Mathematical and Theoretical 45
2012
Earlier work this paper cites.
2012
Cited alongside, same era.
2012
Cited alongside, same era.
A. Bassi, K. Lochan, S. Satin, T. P. Singh, and H. Ulbricht, Models of wave-function collapse, underlying theories, and experimental tests, Rev. Mod. Phys. 85
2013
Cited alongside, same era.
C. Anastopoulos and B. L. Hu, A master equation for gravitational decoherence: probing the textures of spacetime, Classical and Quantum Gravity 30
2013
Cited alongside, same era.
M. P. Blencowe, Effective field theory approach to gravitationally induced decoherence, Phys. Rev. Lett. 111
M. Zych, F. Costa, I. Pikovski, and Č. Brukner, Bell’s theorem for temporal order, Nature Communications 10
2019
Later among the works it cites.
B.-L. B. Hu and E. Verdaguer, Semiclassical and Stochastic Gravity: Quantum Field Effects on Curved Spacetime , Cambridge Monographs on Mathematical Physics (Cambridge University Press, 2020)
2020
Later among the works it cites.
T. Krisnanda, G. Y. Tham, M. Paternostro, and T. Paterek, Observable quantum entanglement due to gravity, npj Quantum Information 6
2020
Later among the works it cites.
A. Vanrietvelde, P. A. Höhn, F. Giacomini, and E. Castro-Ruiz, A change of perspective: switching quantum reference frames via a perspective-neutral framework, Quantum 4
2020
Later among the works it cites.
E. Castro-Ruiz, F. Giacomini, A. Belenchia, and Č. Brukner, Quantum clocks and the temporal localisability of events in the presence of gravitating quantum systems, Nature Communications 11
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
2013
Cited alongside, same era.
C. Rovelli and F. Vidotto, Covariant Loop Quantum Gravity: An Elementary Introduction to Quantum Gravity and Spinfoam Theory , Cambridge Monographs on Mathematical Physics (Cambridge University Press, 2015)
2015
Cited alongside, same era.
C. Anastopoulos and B. L. Hu, Probing a gravitational cat state, Classical and Quantum Gravity 32
2015
Cited alongside, same era.
2016
Cited alongside, same era.
M. Carlesso and A. Bassi, Decoherence due to gravitational time dilation: Analysis of competing decoherence effects, Physics Letters A 380
2016
Cited alongside, same era.
T. Oniga and C. H.-T. Wang, Quantum gravitational decoherence of light and matter, Phys. Rev. D 93
2016
Cited alongside, same era.
2017
Cited alongside, same era.
A. Bassi, A. Großardt, and H. Ulbricht, Gravitational decoherence, Classical and Quantum Gravity 34
2017
Cited alongside, same era.
2020
Later among the works it cites.
A.-C. de la Hamette and T. D. Galley, Quantum reference frames for general symmetry groups, Quantum 4
2020
Later among the works it cites.
C. Rovelli, Gauge is more than mathematical redundancy, One Hundred Years of Gauge Theory , 107–110 (2020)
2020
Later among the works it cites.
C. Anastopoulos and B. L. Hu, Quantum superposition of two gravitational cat states, Classical and Quantum Gravity 37
2020
Later among the works it cites.
T. Westphal, H. Hepach, J. Pfaff, and M. Aspelmeyer, Measurement of gravitational coupling between millimetre-sized masses, Nature 591
2021
Closest in time.
P. A. Höhn, A. R. Smith, and M. P. Lock, Trinity of relational quantum dynamics, Physical Review D 104
2021
Closest in time.
M. Krumm, P. A. Höhn, and M. P. Müller, Quantum reference frame transformations as symmetries and the paradox of the third particle, Quantum 5
2021
Closest in time.
A. Ballesteros, F. Giacomini, and G. Gubitosi, The group structure of dynamical transformations between quantum reference frames, Quantum 5
2021
Closest in time.
F. Giacomini, Spacetime quantum reference frames and superpositions of proper times, Quantum 5
2021
Closest in time.
M. Mikusch, L. C. Barbado, and Č. Brukner, Transformation of spin in quantum reference frames, Phys. Rev. Research 3
2021
Closest in time.
2021
Closest in time.
2021
Closest in time.
2021
Closest in time.
2022
Closest in time.
M. Aspelmeyer, When zeh meets feynman: How to avoid the appearance of a classical world in gravity experiments, in From Quantum to Classical: Essays in Honour of H.-Dieter Zeh , edited by C. Kiefer (Springer International Publishing, Cham, 2022) pp. 85–95
2022
Closest in time.
2022
Closest in time.
2022
Closest in time.
2022
Closest in time.
A.-C. de la Hamette, S. L. Ludescher, and M. P. Müller, Entanglement-asymmetry correspondence for internal quantum reference frames, Physical Review Letters 129
2022
Closest in time.