Aspects of Quantum Gravity Phenomenology and Astrophysics
Abstract
:1. Introduction
2. Graviton
2.1. The Linearized Theory of the Graviton
2.2. Gravitons in Loop Quantum Gravity
2.3. Gravitons in Semiclassical Gravity
- (i)
- As the coherent states are non-Abelian in nature, the expectation values of operators have semiclassical corrections which originate due to self-interactions. These can be detected for high-frequency gravitational waves.
- (ii)
- The search for individual “gravitons” or quanta of geometry would require much more precise instruments, able to resolve the coarse-graining of geometry itself.
2.4. Summary
3. Search for Hawking Radiation and Primordial Black Holes
3.1. Formation of Primordial Black Holes (PBH)
3.2. Jean’s Instability
3.3. A Quantum Entropy Production Fluid and Jean’s Instability
3.4. PBH Formation
3.5. Evaporation of PBH
3.6. Archived Data
3.7. Gamma-Ray Bursts
3.8. HESS
3.9. Neutrino Experiments
4. Event Horizon
5. Conclusions
Funding
Acknowledgments
Conflicts of Interest
References
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Dasgupta, A.; Fajardo-Montenegro, J. Aspects of Quantum Gravity Phenomenology and Astrophysics. Universe 2023, 9, 128. https://doi.org/10.3390/universe9030128
Dasgupta A, Fajardo-Montenegro J. Aspects of Quantum Gravity Phenomenology and Astrophysics. Universe. 2023; 9(3):128. https://doi.org/10.3390/universe9030128
Chicago/Turabian StyleDasgupta, Arundhati, and José Fajardo-Montenegro. 2023. "Aspects of Quantum Gravity Phenomenology and Astrophysics" Universe 9, no. 3: 128. https://doi.org/10.3390/universe9030128
APA StyleDasgupta, A., & Fajardo-Montenegro, J. (2023). Aspects of Quantum Gravity Phenomenology and Astrophysics. Universe, 9(3), 128. https://doi.org/10.3390/universe9030128