Evidencing Quantum Gravity with Thermodynamical Observables
arXiv:2412.17460 · doi:10.1103/jdgg-hmcq
Abstract
Proposed experiments for obtaining empirical evidence for a quantum description of gravity in a table-top setting focus on detecting quantum information signatures, such as entanglement or non-Gaussianity production, in gravitationally interacting quantum systems. Here, we explore an alternative approach where the quantization of gravity could be inferred through measurements of macroscopic, thermodynamical quantities, without the need for addressability of individual quantum systems. To demonstrate the idea, we take as a case study a gravitationally self-interacting Bose gas, and consider its heat capacity. We find a clear-cut distinction between the predictions of a classical gravitational interaction and a quantum gravitational interaction in the heat capacity of the Bose gas.
5 pages, 7 pages appendix
References in corpus (21)
- A Spin Entanglement Witness for Quantum Gravity
- Bose-Einstein condensation of atoms in a uniform potential
- Gravitationally-induced entanglement between two massive particles is sufficient evidence of quantum effects in gravity
- Space-borne Bose-Einstein condensation for precision interferometry
- Magnetic Susceptibility as a Macrosopic Entaglement Witness
- Quantum depletion of a homogeneous Bose-Einstein condensate
- Crucial Role of Quantum Entanglement in Bulk Properties of Solids
- All-Optical Formation of Quantum Degenerate Mixtures
- Non-Gaussianity as a signature of a quantum theory of gravity
- Massive quantum systems as interfaces of quantum mechanics and gravity
- Universal Scaling Laws in the Dynamics of a Homogeneous Unitary Bose Gas
- Gapless Hartree-Fock-Bogoliubov Approximation for Bose Gases
- Large atom number Bose-Einstein condensate of sodium
- Heat Capacity as A Witness of Entanglement
- Compression of Atomic Phase Space Using an Asymmetric One-Way Barrier
- Quasiparticle energy in a strongly interacting homogeneous Bose-Einstein condensate
- Bogoliubov Theory of Dipolar Bose Gas in Weak Random Potential
- Experimental Quantification of Entanglement Through Heat Capacity
- Magneto-Optical Cooling of Atoms
- Aspects of Bose-Einstein condensation in a charged boson system over the dielectric surface
- Efficient cooling of high-angular-momentum atoms