Quantum Corrections to Holographic Strange Metal at Low Temperature

Fuente: arXiv
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Main Authors: Liu, Xiao-Long, Nian, Jun, Zayas, Leopoldo A. Pando
Format: Preprint
Published: 2024
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author Liu, Xiao-Long
Nian, Jun
Zayas, Leopoldo A. Pando
author_facet Liu, Xiao-Long
Nian, Jun
Zayas, Leopoldo A. Pando
contents The holographic approach to the strange metal phase relies on near-extremal asymptotically AdS$_4$ electrically charged black branes with important input from their AdS$_2$ near-horizon throat geometry. Motivated by the current understanding of the role of quantum fluctuations in the throat of near-extremal black holes, we revisit some transport properties. We model quantum gravitational and gauge fluctuations in the throat region by adopting results in Jackiw-Teitelboim gravity, effectively leading to quantum corrections for the dual CFT$_1$ Green's function in the near-horizon infrared region. We use the quantum-corrected Green's function to compute the conductivity for (2+1)-dimensional holographic strange metals and obtain corrections for the DC resistivity and the optical conductivity. We also compare the quantum-corrected holographic approach with results from the complex Sachdev-Ye-Kitaev model and point out qualitative differences. Although experimental detection for the quantum-corrected holographic approach to the DC resistivity requires higher precision than current experimental accuracy, future experiments with improved technologies could detect these quantum corrections. Interestingly, including quantum corrections to the optical conductivity does provide a plausible explanation for the experimental anomalous power-law behavior detected in various strange metals.
format Preprint
id arxiv_https___arxiv_org_abs_2410_11487
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum Corrections to Holographic Strange Metal at Low Temperature
Liu, Xiao-Long
Nian, Jun
Zayas, Leopoldo A. Pando
High Energy Physics - Theory
Strongly Correlated Electrons
General Relativity and Quantum Cosmology
The holographic approach to the strange metal phase relies on near-extremal asymptotically AdS$_4$ electrically charged black branes with important input from their AdS$_2$ near-horizon throat geometry. Motivated by the current understanding of the role of quantum fluctuations in the throat of near-extremal black holes, we revisit some transport properties. We model quantum gravitational and gauge fluctuations in the throat region by adopting results in Jackiw-Teitelboim gravity, effectively leading to quantum corrections for the dual CFT$_1$ Green's function in the near-horizon infrared region. We use the quantum-corrected Green's function to compute the conductivity for (2+1)-dimensional holographic strange metals and obtain corrections for the DC resistivity and the optical conductivity. We also compare the quantum-corrected holographic approach with results from the complex Sachdev-Ye-Kitaev model and point out qualitative differences. Although experimental detection for the quantum-corrected holographic approach to the DC resistivity requires higher precision than current experimental accuracy, future experiments with improved technologies could detect these quantum corrections. Interestingly, including quantum corrections to the optical conductivity does provide a plausible explanation for the experimental anomalous power-law behavior detected in various strange metals.
title Quantum Corrections to Holographic Strange Metal at Low Temperature
topic High Energy Physics - Theory
Strongly Correlated Electrons
General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2410.11487