Quantum acoustics unravels Planckian resistivity

Fuente: arXiv
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Main Authors: Aydin, Alhun, Keski-Rahkonen, Joonas, Heller, Eric J.
Format: Preprint
Published: 2023
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author Aydin, Alhun
Keski-Rahkonen, Joonas
Heller, Eric J.
author_facet Aydin, Alhun
Keski-Rahkonen, Joonas
Heller, Eric J.
contents Strange metals exhibit universal linear-in-temperature resistivity described by a Planckian scattering rate, the origin of which remains elusive. By employing a novel approach inspired by quantum optics, we arrive at the coherent state representation of lattice vibrations: quantum acoustics. Utilizing this nonperturbative framework, we demonstrate that lattice vibrations could serve as active drivers in the Planckian resistivity phenomenon, challenging prevailing theories. By treating charge carriers as quantum wave packets negotiating the dynamic acoustic field, we find that a competition ensues between localization and delocalization giving rise to the previously conjectured universal quantum bound of diffusion, $\hbar/m^{*}$, independent of temperature or any other material parameters. This leads to the enigmatic $T$-linear resistivity over hundreds of degrees, except at very low temperatures. Quantum diffusion also explains why strange metals have much higher electrical resistivity than typical metals. Our work elucidates the critical role of phonons in Planckian resistivity from a new perspective and reconsiders their significance in the transport properties of strange metals.
format Preprint
id arxiv_https___arxiv_org_abs_2303_06077
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Quantum acoustics unravels Planckian resistivity
Aydin, Alhun
Keski-Rahkonen, Joonas
Heller, Eric J.
Strongly Correlated Electrons
Materials Science
Strange metals exhibit universal linear-in-temperature resistivity described by a Planckian scattering rate, the origin of which remains elusive. By employing a novel approach inspired by quantum optics, we arrive at the coherent state representation of lattice vibrations: quantum acoustics. Utilizing this nonperturbative framework, we demonstrate that lattice vibrations could serve as active drivers in the Planckian resistivity phenomenon, challenging prevailing theories. By treating charge carriers as quantum wave packets negotiating the dynamic acoustic field, we find that a competition ensues between localization and delocalization giving rise to the previously conjectured universal quantum bound of diffusion, $\hbar/m^{*}$, independent of temperature or any other material parameters. This leads to the enigmatic $T$-linear resistivity over hundreds of degrees, except at very low temperatures. Quantum diffusion also explains why strange metals have much higher electrical resistivity than typical metals. Our work elucidates the critical role of phonons in Planckian resistivity from a new perspective and reconsiders their significance in the transport properties of strange metals.
title Quantum acoustics unravels Planckian resistivity
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2303.06077