Observation of Phonon Angular Momentum

Fuente: arXiv
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Bibliographic Details
Main Authors: Zhang, Heda, Peshcherenko, N., Yang, F., Ward, T. Z., Raghuvanshi, P., Lindsay, L., Felser, Claudia, Zhang, Y., Yan, J. -Q., Miao, H.
Format: Preprint
Published: 2024
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author Zhang, Heda
Peshcherenko, N.
Yang, F.
Ward, T. Z.
Raghuvanshi, P.
Lindsay, L.
Felser, Claudia
Zhang, Y.
Yan, J. -Q.
Miao, H.
author_facet Zhang, Heda
Peshcherenko, N.
Yang, F.
Ward, T. Z.
Raghuvanshi, P.
Lindsay, L.
Felser, Claudia
Zhang, Y.
Yan, J. -Q.
Miao, H.
contents Angular momentum (AM), a fundamental concept describing the rotation of an object about an axis, profoundly influences all branches of physics. In condensed matter, AM is intimately related to the emergence of topological quantum states, including chiral superconductivity and quantum spin liquids, and various chiral quasiparticles. Recently, it has been predicted that microscopic lattice excitations, known as phonons, can carry finite AM with remarkable macroscopic physical consequences. However, the direct observation of phonon-AM has not been achieved. In this letter, we report the experimental discovery of phonon-AM in the chiral crystal Tellurium. We show that due to AM conservation, applying a time-reversal symmetry breaking thermal gradient along the chiral axis of single crystal Te results in a macroscopic mechanical torque, $τ$, that can be observed using a cantilever-based device. We establish that the mechanical torques change sign by flipping the thermal gradient and disappear in polycrystalline samples that lack a preferred chirality. Based on our experimental settings, we estimate $τ\sim10^{-11}$N$\cdot$m, in agreement with theoretical calculations. Our results uncover phonon-AM and pave the way for phonon-AM enabled quantum states for microelectronic applications.
format Preprint
id arxiv_https___arxiv_org_abs_2409_13462
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Observation of Phonon Angular Momentum
Zhang, Heda
Peshcherenko, N.
Yang, F.
Ward, T. Z.
Raghuvanshi, P.
Lindsay, L.
Felser, Claudia
Zhang, Y.
Yan, J. -Q.
Miao, H.
Strongly Correlated Electrons
Angular momentum (AM), a fundamental concept describing the rotation of an object about an axis, profoundly influences all branches of physics. In condensed matter, AM is intimately related to the emergence of topological quantum states, including chiral superconductivity and quantum spin liquids, and various chiral quasiparticles. Recently, it has been predicted that microscopic lattice excitations, known as phonons, can carry finite AM with remarkable macroscopic physical consequences. However, the direct observation of phonon-AM has not been achieved. In this letter, we report the experimental discovery of phonon-AM in the chiral crystal Tellurium. We show that due to AM conservation, applying a time-reversal symmetry breaking thermal gradient along the chiral axis of single crystal Te results in a macroscopic mechanical torque, $τ$, that can be observed using a cantilever-based device. We establish that the mechanical torques change sign by flipping the thermal gradient and disappear in polycrystalline samples that lack a preferred chirality. Based on our experimental settings, we estimate $τ\sim10^{-11}$N$\cdot$m, in agreement with theoretical calculations. Our results uncover phonon-AM and pave the way for phonon-AM enabled quantum states for microelectronic applications.
title Observation of Phonon Angular Momentum
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2409.13462