Spin-orbit-splitting-driven nonlinear Hall effect in NbIrTe4

Author:

Lee Ji-EunORCID,Wang AifengORCID,Chen Shuzhang,Kwon MinseongORCID,Hwang Jinwoong,Cho Minhyun,Son Ki-Hoon,Han Dong-SooORCID,Choi Jun WooORCID,Kim Young DuckORCID,Mo Sung-KwanORCID,Petrovic CedomirORCID,Hwang ChoongyuORCID,Park Se YoungORCID,Jang ChaunORCID,Ryu HyejinORCID

Abstract

AbstractThe Berry curvature dipole (BCD) serves as a one of the fundamental contributors to emergence of the nonlinear Hall effect (NLHE). Despite intense interest due to its potential for new technologies reaching beyond the quantum efficiency limit, the interplay between BCD and NLHE has been barely understood yet in the absence of a systematic study on the electronic band structure. Here, we report NLHE realized in NbIrTe4 that persists above room temperature coupled with a sign change in the Hall conductivity at 150 K. First-principles calculations combined with angle-resolved photoemission spectroscopy (ARPES) measurements show that BCD tuned by the partial occupancy of spin-orbit split bands via temperature is responsible for the temperature-dependent NLHE. Our findings highlight the correlation between BCD and the electronic band structure, providing a viable route to create and engineer the non-trivial Hall effect by tuning the geometric properties of quasiparticles in transition-metal chalcogen compounds.

Funder

National Research Foundation of Korea

KIST institutional program is a funding from Korea Institute of Science and Technology.

Publisher

Springer Science and Business Media LLC

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