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    T-even nonlinear optical responses in spin-orbit-coupling-free type-II multiferroic materials

    Zi-Hao Feng1, Hang Zhou2, Jie Hou1, Jie-Rui Wang3, and Rui-Chun Xiao1,4,*

    • 1Institute of Physical Science and Information Technology, Anhui University, Hefei 230601, China
    • 2Key Laboratory of Materials Physics, Institute of Solid State Physics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China
    • 3Stony Brook Institute, Anhui University, Hefei 230039, China
    • 4Anhui Provincial Key Laboratory of Magnetic Functional Materials and Devices, School of Materials Science and Engineering, Anhui University, Hefei 230601, China

    • *Contact author: xiaoruichun@ahu.edu.cn

    Phys. Rev. B 114, 134431 – Published 25 September, 2026

    DOI: https://doi.org/10.1103/6s9r-376c

    This article was published on 25 September, 2026. Please update your links.

    Abstract

    Nonlinear optical (NLO) effects have drawn considerable attention in condensed matter physics. In magnetically ordered materials, NLO responses are widely believed to be time-reversal odd (T-odd). In particular, the widely studied PT-symmetric collinear antiferromagnetic (AFM) materials have shown that their NLO responses depend critically on spin-orbit coupling (SOC). In this work, we demonstrate that E-type AFM materials, as a class of type-II multiferroic materials independent of SOC, exhibit NLO responses that break the traditional conception. Using both magnetic group and spin group methods, we compare the symmetry-breaking mechanisms between PT-symmetric AFM systems and E-type AFM systems. Through first-principles calculations on representative E-type AFM materials (MnS2, LuMnO3, and NdNiO3), we find that the NLO coefficients of the two spin sublattices are identical in both magnitude and sign. Therefore, these NLO responses persist in the absence of SOC effect, and are time-reversal even (T-even). Additionally, we discover that the NLO responses can be effectively tuned across distinct magnetic polymorphs. The above results provide new insights into the symmetry origins and microscopic mechanisms of NLO effects in SOC-free magnetically ordered materials.

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