Generic Chiral Anomaly and Planar Hall Effect in a Non-Weyl System

Fuente: arXiv
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Main Authors: Wang, Yongjian, Wowchik, Alexander, Boemerich, Thomas, Taskin, A. A., Rosch, Achim, Ando, Yoichi
Format: Preprint
Published: 2025
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_version_ 1866915337465757696
author Wang, Yongjian
Wowchik, Alexander
Boemerich, Thomas
Taskin, A. A.
Rosch, Achim
Ando, Yoichi
author_facet Wang, Yongjian
Wowchik, Alexander
Boemerich, Thomas
Taskin, A. A.
Rosch, Achim
Ando, Yoichi
contents The condensed-matter version of the chiral anomaly describes how electrons are pumped from a Weyl node with negative chirality to a Weyl node with positive chirality using parallel electric and magnetic fields. Key experimental signatures are a negative longitudinal magnetoresistance (LMR) and the planar Hall effect (PHE), both of which have been experimentally observed. Here, we show that the chiral anomaly explains key features of magnetotransport in the nodal-line semimetal ZrTe$_5$ despite the absence of Weyl points. The anomaly physics applies generically to materials in the quantum limit, when electron transport becomes quasi-one-dimensional, provided that Fermi velocities remain sufficiently large. This explains not only the negative LMR but also the PHE with a gigantic Hall angle and a highly unusual magnetic-field-angle dependence in ZrTe$_5$.
format Preprint
id arxiv_https___arxiv_org_abs_2506_09756
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Generic Chiral Anomaly and Planar Hall Effect in a Non-Weyl System
Wang, Yongjian
Wowchik, Alexander
Boemerich, Thomas
Taskin, A. A.
Rosch, Achim
Ando, Yoichi
Mesoscale and Nanoscale Physics
Materials Science
Strongly Correlated Electrons
The condensed-matter version of the chiral anomaly describes how electrons are pumped from a Weyl node with negative chirality to a Weyl node with positive chirality using parallel electric and magnetic fields. Key experimental signatures are a negative longitudinal magnetoresistance (LMR) and the planar Hall effect (PHE), both of which have been experimentally observed. Here, we show that the chiral anomaly explains key features of magnetotransport in the nodal-line semimetal ZrTe$_5$ despite the absence of Weyl points. The anomaly physics applies generically to materials in the quantum limit, when electron transport becomes quasi-one-dimensional, provided that Fermi velocities remain sufficiently large. This explains not only the negative LMR but also the PHE with a gigantic Hall angle and a highly unusual magnetic-field-angle dependence in ZrTe$_5$.
title Generic Chiral Anomaly and Planar Hall Effect in a Non-Weyl System
topic Mesoscale and Nanoscale Physics
Materials Science
Strongly Correlated Electrons
url https://arxiv.org/abs/2506.09756