Quantum Acoustics Demystifies the Strange Metals

Fuente: arXiv
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Main Authors: Heller, Eric J., Aydin, Alhun, Graf, Anton M., de Nijs, Joost, Zimmermann, Yoel, Ouyang, Xiaoyu, Yuan, Shaobing, Chai, Zixuan, Chen, Siyuan, Jain, Jasper, Xiao, Mingxuan, Yu, Chenzheng, Lu, Zhongling, Keski-Rahkonen, Joonas
Format: Preprint
Published: 2025
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author Heller, Eric J.
Aydin, Alhun
Graf, Anton M.
de Nijs, Joost
Zimmermann, Yoel
Ouyang, Xiaoyu
Yuan, Shaobing
Chai, Zixuan
Chen, Siyuan
Jain, Jasper
Xiao, Mingxuan
Yu, Chenzheng
Lu, Zhongling
Keski-Rahkonen, Joonas
author_facet Heller, Eric J.
Aydin, Alhun
Graf, Anton M.
de Nijs, Joost
Zimmermann, Yoel
Ouyang, Xiaoyu
Yuan, Shaobing
Chai, Zixuan
Chen, Siyuan
Jain, Jasper
Xiao, Mingxuan
Yu, Chenzheng
Lu, Zhongling
Keski-Rahkonen, Joonas
contents Phonons have long been thought to be incapable of explaining key phenomena in strange metals, including linear-in-\textit{T} Planckian resistivity from high to very low temperatures. We argue that these conclusions were based on static, perturbative approaches that overlooked essential time-dependent and nonperturbative electron-lattice physics. In fact ``phonons'' are not the best target for discussion, just like ``photons'' are not the best way to think about Maxwell's equations. Quantum optics connects photons and electromagnetism, as developed 60 years ago by Glauber and others. We have been developing the parallel world of quantum acoustics. Far from being only of academic interest, the new tools are rapidly exposing the secrets of the strange metals, revealing strong vibronic (vibration-electronic) interactions playing a crucial role forming polarons and charge density waves, linear-in-$T$ resistivity at the Planckian rate over thousands of degrees, resolution of the Drude peak infrared anomaly, and the absence of a $T^4$ low-temperature resistivity rise in 2D systems, and of a Mott-Ioffe-Regel resistivity saturation. We derive Planckian transport, polarons, CDWs, and pseudogaps from the Fröhlich model. The ``new physics'' has been hiding in this model all along, in the right parameter regime, if it is treated nonperturbatively. In the course of this work we have uncovered the generalization of Anderson localization to dynamic media: a universal Planckian diffusion emerges, a ``ghost'' of Anderson localization. Planckian diffusion is clearly defined and is more fundamental than the popular but elusive, model dependent concept of ``Planckian speed limit''.
format Preprint
id arxiv_https___arxiv_org_abs_2511_01853
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum Acoustics Demystifies the Strange Metals
Heller, Eric J.
Aydin, Alhun
Graf, Anton M.
de Nijs, Joost
Zimmermann, Yoel
Ouyang, Xiaoyu
Yuan, Shaobing
Chai, Zixuan
Chen, Siyuan
Jain, Jasper
Xiao, Mingxuan
Yu, Chenzheng
Lu, Zhongling
Keski-Rahkonen, Joonas
Strongly Correlated Electrons
Materials Science
Phonons have long been thought to be incapable of explaining key phenomena in strange metals, including linear-in-\textit{T} Planckian resistivity from high to very low temperatures. We argue that these conclusions were based on static, perturbative approaches that overlooked essential time-dependent and nonperturbative electron-lattice physics. In fact ``phonons'' are not the best target for discussion, just like ``photons'' are not the best way to think about Maxwell's equations. Quantum optics connects photons and electromagnetism, as developed 60 years ago by Glauber and others. We have been developing the parallel world of quantum acoustics. Far from being only of academic interest, the new tools are rapidly exposing the secrets of the strange metals, revealing strong vibronic (vibration-electronic) interactions playing a crucial role forming polarons and charge density waves, linear-in-$T$ resistivity at the Planckian rate over thousands of degrees, resolution of the Drude peak infrared anomaly, and the absence of a $T^4$ low-temperature resistivity rise in 2D systems, and of a Mott-Ioffe-Regel resistivity saturation. We derive Planckian transport, polarons, CDWs, and pseudogaps from the Fröhlich model. The ``new physics'' has been hiding in this model all along, in the right parameter regime, if it is treated nonperturbatively. In the course of this work we have uncovered the generalization of Anderson localization to dynamic media: a universal Planckian diffusion emerges, a ``ghost'' of Anderson localization. Planckian diffusion is clearly defined and is more fundamental than the popular but elusive, model dependent concept of ``Planckian speed limit''.
title Quantum Acoustics Demystifies the Strange Metals
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2511.01853