Electrical magnetochiral anisotropy and quantum metric in chiral conductors
Date:
Contributed oral talk, session Chirality and Spin Properties in Chiral Matters.
Abstract: Electrical magnetochiral anisotropy (EMCA) refers to the chirality- and current-dependent nonlinear magnetoresistance in chiral conductors and is commonly interpreted in a semiclassical picture. In this work, we reveal a quantum geometry origin of EMCA using a chiral rectangular lattice model that resembles a chiral organic conductor (DM-EDT-TTF)2ClO4 studied for EMCA recently and exhibits symmetry-protected Dirac bands similar to those of graphene. Compared to the semiclassical term, we find that Dirac states contribute significantly to EMCA via the quantum metric when the Fermi energy is close to the Dirac point. Besides, we discover that a topological insulator state can emerge once spin-orbit coupling (SOC) is added to our chiral model lattice. Our work paves a path toward understanding quantum geometry in the magnetotransport of chiral materials.
Authors: Yiyang Jiang (Penn State University), Qinyan Yi (Peking University), Binghai Yan (Weizmann Institute of Science).
Related publication: Jiang, Y., Yi, Q., & Yan, B. (2024). Electrical magnetochiral anisotropy and quantum metric in chiral conductors. arXiv:2407.05245.
