Giant odd-parity magnetoresistance from proximity-induced topological states

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Hotta, Tomoki, Anh, Le Duc, Chiba, Takahiro, Kota, Yohei, Tanaka, Masaaki
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915418583597056
author Hotta, Tomoki
Anh, Le Duc
Chiba, Takahiro
Kota, Yohei
Tanaka, Masaaki
author_facet Hotta, Tomoki
Anh, Le Duc
Chiba, Takahiro
Kota, Yohei
Tanaka, Masaaki
contents Magnetoresistance typically exhibits even symmetry with respect to the magnetic field, owing to time reversal symmetry (TRS) as dictated by Onsager reciprocity relations. However, in certain systems where TRS is broken, magnetoresistance may acquire an odd component with respect to the magnetic field, referred to as odd parity magnetoresistance (OMR). To date, reported OMR values have been modest, usually restricted to a few tens of percent even under high magnetic fields. Here, we report the discovery of a giant OMR reaching up to 1,150% under a relatively low field of 1 T in a heterostructure composed of 3 nm thick alpha Sn and a ferromagnetic semiconductor, (In,Fe)Sb. Although alpha Sn in this thickness range is a trivial narrow gap semiconductor, analysis of Shubnikov de Haas oscillations combined with ab initio calculations reveals the emergence of tilted topological surface states, induced via magnetic proximity from the (In,Fe)Sb layer. The observed OMR behavior is well explained by a Boltzmann transport model assuming the presence of oppositely tilted Weyl cones in the alpha Sn band structure. Our findings not only shed new light on the physics of OMR but also suggest promising avenues for its application in electronic and spintronic devices, such as ultrasensitive magnetic sensors.
format Preprint
id arxiv_https___arxiv_org_abs_2507_23166
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Giant odd-parity magnetoresistance from proximity-induced topological states
Hotta, Tomoki
Anh, Le Duc
Chiba, Takahiro
Kota, Yohei
Tanaka, Masaaki
Materials Science
Mesoscale and Nanoscale Physics
Magnetoresistance typically exhibits even symmetry with respect to the magnetic field, owing to time reversal symmetry (TRS) as dictated by Onsager reciprocity relations. However, in certain systems where TRS is broken, magnetoresistance may acquire an odd component with respect to the magnetic field, referred to as odd parity magnetoresistance (OMR). To date, reported OMR values have been modest, usually restricted to a few tens of percent even under high magnetic fields. Here, we report the discovery of a giant OMR reaching up to 1,150% under a relatively low field of 1 T in a heterostructure composed of 3 nm thick alpha Sn and a ferromagnetic semiconductor, (In,Fe)Sb. Although alpha Sn in this thickness range is a trivial narrow gap semiconductor, analysis of Shubnikov de Haas oscillations combined with ab initio calculations reveals the emergence of tilted topological surface states, induced via magnetic proximity from the (In,Fe)Sb layer. The observed OMR behavior is well explained by a Boltzmann transport model assuming the presence of oppositely tilted Weyl cones in the alpha Sn band structure. Our findings not only shed new light on the physics of OMR but also suggest promising avenues for its application in electronic and spintronic devices, such as ultrasensitive magnetic sensors.
title Giant odd-parity magnetoresistance from proximity-induced topological states
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2507.23166