Giant Domain-Wall Hall Magnetoresistance in Magnetic Topological Semimetal

Fuente: arXiv
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Main Authors: Yang, Jinying, Zeng, Qingqi, Wang, Yibo, Lyu, Meng, Liu, Yang, Liu, Xingchen, Dong, Xuebin, Wang, Binbin, Li, Xiyang, Liu, Enke
Format: Preprint
Published: 2026
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_version_ 1866910125205225472
author Yang, Jinying
Zeng, Qingqi
Wang, Yibo
Lyu, Meng
Liu, Yang
Liu, Xingchen
Dong, Xuebin
Wang, Binbin
Li, Xiyang
Liu, Enke
author_facet Yang, Jinying
Zeng, Qingqi
Wang, Yibo
Lyu, Meng
Liu, Yang
Liu, Xingchen
Dong, Xuebin
Wang, Binbin
Li, Xiyang
Liu, Enke
contents Magnetic topological semimetals exhibit emerging magneto-transport behaviors, such as the giant anomalous Hall effect (AHE), chiral Hall effect, and antisymmetric magnetoresistance. In this work, based on the magnetic Weyl semimetal Co3Sn2S2, we report an intriguing longitudinal domain-wall Hall magnetoresistance in multi-domain states. According to a multi-domain model, a concise formula of this Hall magnetoresistance was revealed and verified experimentally. Rather than the real change of longitudinal resistance, this Hall magnetoresistance originates from an additional electric field distribution induced by the transverse giant AHE through the domain wall, which can be directly correlated to the Berry phase of topological Weyl bands. In Co3Sn2S2 devices, the Hall magnetoresistance was an order of magnitude larger than that of conventional magnetic materials, indicating its potential for multi-resistance-state modulation via the Weyl-enhanced AHE.
format Preprint
id arxiv_https___arxiv_org_abs_2604_11452
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Giant Domain-Wall Hall Magnetoresistance in Magnetic Topological Semimetal
Yang, Jinying
Zeng, Qingqi
Wang, Yibo
Lyu, Meng
Liu, Yang
Liu, Xingchen
Dong, Xuebin
Wang, Binbin
Li, Xiyang
Liu, Enke
Mesoscale and Nanoscale Physics
Materials Science
Magnetic topological semimetals exhibit emerging magneto-transport behaviors, such as the giant anomalous Hall effect (AHE), chiral Hall effect, and antisymmetric magnetoresistance. In this work, based on the magnetic Weyl semimetal Co3Sn2S2, we report an intriguing longitudinal domain-wall Hall magnetoresistance in multi-domain states. According to a multi-domain model, a concise formula of this Hall magnetoresistance was revealed and verified experimentally. Rather than the real change of longitudinal resistance, this Hall magnetoresistance originates from an additional electric field distribution induced by the transverse giant AHE through the domain wall, which can be directly correlated to the Berry phase of topological Weyl bands. In Co3Sn2S2 devices, the Hall magnetoresistance was an order of magnitude larger than that of conventional magnetic materials, indicating its potential for multi-resistance-state modulation via the Weyl-enhanced AHE.
title Giant Domain-Wall Hall Magnetoresistance in Magnetic Topological Semimetal
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2604.11452