Background independent condensed matter models for quantum gravity
arXiv:1011.5754 · doi:10.1088/1367-2630/13/9/095006
Abstract
A number of recent proposals for a quantum theory of gravity are based on the idea that spacetime geometry and gravity are derivative concepts and only apply at an approximate level. There are two fundamental challenges to any such approach. At the conceptual level, there is a clash between the "timelessness" of general relativity and emergence. Second, the lack of a fundamental spacetime makes difficult the straightforward application of well-known methods of statistical physics to the problem. We recently initiated a study of such problems using spin systems based on evolution of quantum networks with no a priori geometric notions as models for emergent geometry and gravity. In this article we review two such models. The first is a model of emergent (flat) space and matter and we show how to use methods from quantum information theory to derive features such as speed of light from a non-geometric quantum system. The second model exhibits interacting matter and geometry, with the geometry defined by the behavior of matter. This model has primitive notions of gravitational attraction which we illustrate with a toy black hole, and exhibits entanglement between matter and geometry and thermalization of the quantum geometry.
Contribution submitted to the focus issue of the New Journal of Physics on "Classical and Quantum Analogues for Gravitational Phenomena and Related Effects", R. Schuetzhold, U. Leonhardt and C. Maia, Eds
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Cited by in corpus (17)
- Coarse graining methods for spin net and spin foam models
- Baryon Asymmetry from the Generalized Uncertainty Principle
- Phase diagram of the Bose-Hubbard Model on Complex Networks
- Ensembles of physical states and random quantum circuits on graphs
- Statistical Thermodynamics of Polymer Quantum Systems
- Gravity as an emergent phenomenon: a GFT perspective
- Disordered locality and Lorentz dispersion relations: an explicit model of quantum foam
- Test of Quantum Gravity in Statistical Mechanics
- Domain structures in quantum graphity
- Interacting quantum walk on a graph
- Appearing Out of Nowhere: The Emergence of Spacetime in Quantum Gravity
- Minimal Length Phenomenology and the Black Body Radiation
- Dark Matter as an effect of a minimal length
- Energetics of the Quantum Graphity Universe
- On the depth of quantum space
- Gauge protected entanglement between gravity and matter
- Curved geometry and Graphs