Derivation of the deformed Heisenberg algebra from discrete spacetime

Fuente: arXiv
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Main Authors: Shah, Naveed Ahmad, Ashraf, S. S. Z., Shaikh, Aasiya, Yamin, Yas, Sahoo, P. K., Bhat, Aaqid, Lone, Suhail Ahmad, Faizal, Mir, Ahsan, M. A. H.
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Published: 2023
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author Shah, Naveed Ahmad
Ashraf, S. S. Z.
Shaikh, Aasiya
Yamin, Yas
Sahoo, P. K.
Bhat, Aaqid
Lone, Suhail Ahmad
Faizal, Mir
Ahsan, M. A. H.
author_facet Shah, Naveed Ahmad
Ashraf, S. S. Z.
Shaikh, Aasiya
Yamin, Yas
Sahoo, P. K.
Bhat, Aaqid
Lone, Suhail Ahmad
Faizal, Mir
Ahsan, M. A. H.
contents Although the deformation of the Heisenberg algebra by a minimal length has become a central tool in quantum gravity phenomenology, it has never been rigorously obtained and is often derived using heuristic reasoning. In this study, we move beyond the heuristic derivation of the deformed Heisenberg algebra and explicitly derive it using a model of discrete spacetime, which is motivated by quantum gravity. Initially, we investigate the effects of the leading order Planckian lattice corrections and demonstrate that they precisely match those suggested by the heuristic arguments commonly used in quantum gravity phenomenology. Furthermore, we rigorously obtain deformations from the higher-order Planckian lattice corrections. In contrast to the leading-order corrections, these higher-order corrections are model dependent. We select a specific model that breaks the rotational symmetry, as the importance of such rotational symmetry breaking lies in the relationship between CMB anisotropies and quantum gravitational effects. Based on the mathematical similarity of the Planckian lattice used here with the graphene lattice, we propose that graphene can serve as an analogue system for the study of quantum gravity. Finally, we examine the deformation of the covariant form of the Heisenberg algebra using a four-dimensional Euclidean lattice.
format Preprint
id arxiv_https___arxiv_org_abs_2302_12572
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Derivation of the deformed Heisenberg algebra from discrete spacetime
Shah, Naveed Ahmad
Ashraf, S. S. Z.
Shaikh, Aasiya
Yamin, Yas
Sahoo, P. K.
Bhat, Aaqid
Lone, Suhail Ahmad
Faizal, Mir
Ahsan, M. A. H.
General Relativity and Quantum Cosmology
Although the deformation of the Heisenberg algebra by a minimal length has become a central tool in quantum gravity phenomenology, it has never been rigorously obtained and is often derived using heuristic reasoning. In this study, we move beyond the heuristic derivation of the deformed Heisenberg algebra and explicitly derive it using a model of discrete spacetime, which is motivated by quantum gravity. Initially, we investigate the effects of the leading order Planckian lattice corrections and demonstrate that they precisely match those suggested by the heuristic arguments commonly used in quantum gravity phenomenology. Furthermore, we rigorously obtain deformations from the higher-order Planckian lattice corrections. In contrast to the leading-order corrections, these higher-order corrections are model dependent. We select a specific model that breaks the rotational symmetry, as the importance of such rotational symmetry breaking lies in the relationship between CMB anisotropies and quantum gravitational effects. Based on the mathematical similarity of the Planckian lattice used here with the graphene lattice, we propose that graphene can serve as an analogue system for the study of quantum gravity. Finally, we examine the deformation of the covariant form of the Heisenberg algebra using a four-dimensional Euclidean lattice.
title Derivation of the deformed Heisenberg algebra from discrete spacetime
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2302.12572