On local conservation of information content in Schwarzschild black
holes
- URL: http://arxiv.org/abs/2203.14970v2
- Date: Wed, 6 Apr 2022 13:43:39 GMT
- Title: On local conservation of information content in Schwarzschild black
holes
- Authors: Godwill Mbiti Kanyolo and Titus Masese
- Abstract summary: We introduce a geometric phase in general relativity corresponding to Schwarzschild black hole information content.
The results attest to the utility of the proposed field equations in capturing key aspects of quantum gravity theories.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The central equations in classical general relativity are the Einstein Field
Equations, which accurately describe not only the generation of
pseudo-Riemannian curvature by matter and radiation manifesting as
gravitational effects, but more importantly mass-energy dynamics, evolution and
distribution on the space-time manifold. Herein, we introduce a geometric phase
in general relativity corresponding to Schwarzschild black hole information
content. This quantity appropriately satisfies a local conservation law subject
to minimal coupling, with other desirable properties such as the quantization
of the black hole horizon in units of Planck area. The local conservation law
is imposed by field equations, which not only contain the trace of Einstein
Field Equations, but also a complex-valued function with properties analogous
to the quantum-mechanical wave function. Such success attests to the utility of
the proposed field equations in capturing key aspects of quantum gravity
theories.
Related papers
- Geometry-Information Duality: Quantum Entanglement Contributions to Gravitational Dynamics [0.0]
We propose a fundamental duality between the geometric properties of spacetime and the informational content of quantum fields.
We modify Einstein's field equations by introducing an informational stress-energy tensor derived from quantum entanglement entropy.
Our results indicate that quantum information plays a crucial role in gravitational dynamics.
arXiv Detail & Related papers (2024-09-17T19:28:50Z) - Gravity from entropy [0.0]
Gravity is derived from an entropic action coupling matter fields with geometry.
The matter fields curve spacetime, defining a metric induced by the matter fields.
A canonical quantization of this field theory could bring new insights into quantum gravity.
arXiv Detail & Related papers (2024-08-26T16:19:37Z) - A Theory of Quantum Jumps [44.99833362998488]
We study fluorescence and the phenomenon of quantum jumps'' in idealized models of atoms coupled to the quantized electromagnetic field.
Our results amount to a derivation of the fundamental randomness in the quantum-mechanical description of microscopic systems.
arXiv Detail & Related papers (2024-04-16T11:00:46Z) - Matter relative to quantum hypersurfaces [44.99833362998488]
We extend the Page-Wootters formalism to quantum field theory.
By treating hypersurfaces as quantum reference frames, we extend quantum frame transformations to changes between classical and nonclassical hypersurfaces.
arXiv Detail & Related papers (2023-08-24T16:39:00Z) - Hybrid Geometrodynamics: A Hamiltonian description of classical gravity
coupled to quantum matter [0.0]
We generalize the Hamiltonian picture of General Relativity coupled to classical matter, known as geometrodynamics, to the case where gravity is described by a Quantum Field Theory in Curved Spacetime.
In our approach there is no non-dynamic background structure, apart from the manifold of events, and the gravitational and quantum degrees of freedom have their dynamics inextricably coupled.
An important feature of this work is the use of Gaussian measures over the space of matter fields and of Hida distributions to define a common superspace to all possible Hilbert spaces with different measures, to properly characterize the Schrodinger wave functional picture of QFT in
arXiv Detail & Related papers (2023-07-03T10:46:40Z) - Fermionic anyons: entanglement and quantum computation from a resource-theoretic perspective [39.58317527488534]
We develop a framework to characterize the separability of a specific type of one-dimensional quasiparticle known as a fermionic anyon.
We map this notion of fermionic-anyon separability to the free resources of matchgate circuits.
We also identify how entanglement between two qubits encoded in a dual-rail manner, as standard for matchgate circuits, corresponds to the notion of entanglement between fermionic anyons.
arXiv Detail & Related papers (2023-06-01T15:25:19Z) - Does the Universe have its own mass? [62.997667081978825]
The mass of the universe is a distribution of non-zero values of gravitational constraints.
A formulation of the Euclidean quantum theory of gravity is also proposed to determine the initial state.
Being unrelated to ordinary matter, the distribution of its own mass affects the geometry of space.
arXiv Detail & Related papers (2022-12-23T22:01:32Z) - Quantum dynamics corresponding to chaotic BKL scenario [62.997667081978825]
Quantization smears the gravitational singularity avoiding its localization in the configuration space.
Results suggest that the generic singularity of general relativity can be avoided at quantum level.
arXiv Detail & Related papers (2022-04-24T13:32:45Z) - Schr\"odinger equation in a general curved space-time geometry [0.0]
We consider relativistic quantum field theory in the presence of an external electric potential in a general curved space-time geometry.
We calculate the leading correction due to the curvature of the space-time geometry to the Schr"odinger equation.
We then compute the non-vanishing probability of excitation for a hydrogen atom that falls in or is scattered by a general Schwarzschild black hole.
arXiv Detail & Related papers (2021-05-26T18:47:44Z) - Fractional Schr\"odinger equation in gravitational optics [91.3755431537592]
This paper addresses issues surrounding the concept of fractional quantum mechanics, related to lights propagation in inhomogeneous nonlinear media.
We have also concerned with linear and nonlinear Airy beam accelerations in flat and curved spaces and fractal photonics.
arXiv Detail & Related papers (2021-01-28T10:45:21Z) - Holographic Space-time and Quantum Information [0.0]
Holographic Space-time is a translation of the principles of Lorentzian geometry into the language of quantum information.
The quantum version of Einstein's relativity principle is a set of constraints on the mutual quantum information shared by causal diamonds.
arXiv Detail & Related papers (2020-01-22T18:48:31Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.