Indirect probe of quantum gravity using molecular wave-packets
From MaRDI portal
Publication:5160003
DOI10.1088/1361-6382/ab4212zbMath1478.83103arXiv1901.09696OpenAlexW3103644166MaRDI QIDQ5160003
Sujoy Kumar Modak, Carlos Villalpando
Publication date: 28 October 2021
Published in: Classical and Quantum Gravity (Search for Journal in Brave)
Full work available at URL: https://arxiv.org/abs/1901.09696
Quantization of the gravitational field (83C45) Asymptotic procedures (radiation, news functions, (mathcal{H} )-spaces, etc.) in general relativity and gravitational theory (83C30) Methods of noncommutative geometry in general relativity (83C65) Molecular physics (81V55) Uncertainty relations, also entropic (81S07)
Related Items
Modified commutators are not sufficient to determine a quantum gravity minimal length scale ⋮ Reconciling a quantum gravity minimal length with lack of photon dispersion ⋮ White dwarfs and generalized uncertainty principle ⋮ A novel mechanism for probing the Planck scale
Cites Work
- Some aspects of Planck scale quantum optics
- Generalized uncertainty principle from quantum geometry
- GUP parameter from quantum corrections to the Newtonian potential
- The quantum structure of spacetime of the Planck scale and quantum fields
- Minimal length scale scenarios for quantum gravity
- Generalized uncertainty principle as a consequence of the effective field theory
- Wave packets propagation in quantum gravity
- Sub-Planckian black holes and the generalized uncertainty principle
- Physics on the smallest scales: an introduction to minimal length phenomenology
- Background-independent quantization and the uncertainty principle
- Generalized uncertainty principle, extra dimensions and holography
- DOUBLY-SPECIAL RELATIVITY: FIRST RESULTS AND KEY OPEN PROBLEMS
- RELATIVITY IN SPACETIMES WITH SHORT-DISTANCE STRUCTURE GOVERNED BY AN OBSERVER-INDEPENDENT (PLANCKIAN) LENGTH SCALE
- Quantum gravity, shadow states and quantum mechanics
- Generalized uncertainty principle: Approaches and applications
- Quantized Space-Time