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arXiv · 2410.03088

Exchange striction induced thermal Hall effect in van der Waals antiferromagnet MnPS$_3$

Abstract

The thermal Hall effect has emerged as an ideal probe for investigating topological phenomena of charge-neutral excitation. Notably, it reveals crucial aspects of spin-lattice couplings that have been difficult to access for decades. However, the exchange striction mechanism from a lattice-induced change in exchange interaction has often been ignored in thermal Hall experiments. MnPS3 can offer a platform to study exchange striction on the thermal Hall effect due to its significant spin-lattice coupling and field-induced non-collinear spin configuration. Our thermal transport data show distinct temperature and field dependence of longitudinal thermal conductivity ($κ_{xx}$) and thermal Hall effect ($κ_{xy}$). By using detailed theoretical calculation, we found that the inclusion of the exchange striction is essential for a better description of both $κ_{xx}$ and $κ_{xy}$. Our result demonstrates the importance of the exchange striction mechanism for a complete understanding of the magnon-phonon-driven thermal Hall effect.

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BibTeXRIS

Heejun Yang, Gyungchoon Go, Jaena Park, Se Kwon Kim, Je-Geun Park. 2024-10-04. Exchange striction induced thermal Hall effect in van der Waals antiferromagnet MnPS$_3$. https://doi.org/10.1103/physrevb.110.165147

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