Broadband nonlinear Hall response and multiple wave mixing in a room temperature altermagnet

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Sankar, Soumya, Cheng, Xingkai, Chen, Xinyu, Fu, Xizhi, Hattori, Takahiro Urata Wataru, Lu, Wenlong, Lin, Zihan, Chen, Dong, Felser, Claudia, Ikuta, Hiroshi, Ma, Junzhang, Liu, Junwei, Jäck, Berthold
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866911263784697856
author Sankar, Soumya
Cheng, Xingkai
Chen, Xinyu
Fu, Xizhi
Hattori, Takahiro Urata Wataru
Lu, Wenlong
Lin, Zihan
Chen, Dong
Felser, Claudia
Ikuta, Hiroshi
Ma, Junzhang
Liu, Junwei
Jäck, Berthold
author_facet Sankar, Soumya
Cheng, Xingkai
Chen, Xinyu
Fu, Xizhi
Hattori, Takahiro Urata Wataru
Lu, Wenlong
Lin, Zihan
Chen, Dong
Felser, Claudia
Ikuta, Hiroshi
Ma, Junzhang
Liu, Junwei
Jäck, Berthold
contents Crystalline symmetries determine the linear and nonlinear response of materials to external stimuli such as mechanical pressure and electromagnetic fields, governing phenomena such as piezoelectricity, optical activity, and multiple wave mixing with wide ranging technological applications. Altermagnets present a new class of materials with magnetic crystalline order where specific crystal symmetry operations connect antiferromagnetic sublattices, leading to non-relativistic spin-splitting of the electronic band structure. Hence, the electric material properties of altermagnets should uniquely mirror these underlying symmetry properties, potentially giving rise to novel phenomena in response to external driving fields. Here, we report the discovery of a broadband third-order nonlinear anomalous Hall effect in altermagnetic CrSb at room temperature. The comparison of our observations with symmetry analyses and model calculations shows that this nonlinear Hall response is induced by the nonlinear electric susceptibility of a Berry curvature quadrupole, which exists within the spin-split band structure of CrSb and is characterized by the underlying crystalline and magnetic symmetries. We then utilize this third-order nonlinear electric susceptibility of CrSb to realize a multiple wave mixing device with pronounced four wave mixing output, which could, in principle, be extended to THz frequencies. Our study discovers that the crystalline magnetic order of altermagnets determines their nonlinear electric material properties, which could facilitate applications in high-frequency electronics, THz generation, communication networks, and energy harvesting.
format Preprint
id arxiv_https___arxiv_org_abs_2511_10471
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Broadband nonlinear Hall response and multiple wave mixing in a room temperature altermagnet
Sankar, Soumya
Cheng, Xingkai
Chen, Xinyu
Fu, Xizhi
Hattori, Takahiro Urata Wataru
Lu, Wenlong
Lin, Zihan
Chen, Dong
Felser, Claudia
Ikuta, Hiroshi
Ma, Junzhang
Liu, Junwei
Jäck, Berthold
Mesoscale and Nanoscale Physics
Crystalline symmetries determine the linear and nonlinear response of materials to external stimuli such as mechanical pressure and electromagnetic fields, governing phenomena such as piezoelectricity, optical activity, and multiple wave mixing with wide ranging technological applications. Altermagnets present a new class of materials with magnetic crystalline order where specific crystal symmetry operations connect antiferromagnetic sublattices, leading to non-relativistic spin-splitting of the electronic band structure. Hence, the electric material properties of altermagnets should uniquely mirror these underlying symmetry properties, potentially giving rise to novel phenomena in response to external driving fields. Here, we report the discovery of a broadband third-order nonlinear anomalous Hall effect in altermagnetic CrSb at room temperature. The comparison of our observations with symmetry analyses and model calculations shows that this nonlinear Hall response is induced by the nonlinear electric susceptibility of a Berry curvature quadrupole, which exists within the spin-split band structure of CrSb and is characterized by the underlying crystalline and magnetic symmetries. We then utilize this third-order nonlinear electric susceptibility of CrSb to realize a multiple wave mixing device with pronounced four wave mixing output, which could, in principle, be extended to THz frequencies. Our study discovers that the crystalline magnetic order of altermagnets determines their nonlinear electric material properties, which could facilitate applications in high-frequency electronics, THz generation, communication networks, and energy harvesting.
title Broadband nonlinear Hall response and multiple wave mixing in a room temperature altermagnet
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2511.10471