Evidence of ferroelectricity in an antiferromagnetic vanadium trichloride monolayer.

Deng, Jinghao; Guo, Deping; Wen, Yao; Lu, Shuangzan; Zhang, Hui; Cheng, Zhengbo; Pan, Zemin; Jian, Tao et al. · Sci Adv · 2025

basic_science · Level V

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Abstract

A reduced dimensionality of multiferroic materials is highly desired for device miniaturization, but the coexistence of ferroelectricity and magnetism at the two-dimensional limit is yet to be conclusively demonstrated. Here, we used a NbSe<sub>2</sub> substrate to break both the <i>C</i><sub>3</sub> rotational and inversion symmetries in monolayer VCl<sub>3</sub> and, thus, introduced exceptional in-plane ferroelectricity into a two-dimensional magnet. Scanning tunneling spectroscopy directly visualized ferroelectric domains and manipulated their domain boundaries in monolayer VCl<sub>3</sub>, where coexisting antiferromagnetic order with canted magnetic moments was verified by vibrating sample magnetometer measurements. Our density functional theory calculations highlight the crucial role that highly directional interfacial Cl-Se interactions play in breaking the symmetries and, thus, in introducing in-plane ferroelectricity, which was further verified by examining an ML-VCl<sub>3</sub>/graphene sample. Our work demonstrates an approach to manipulate the ferroelectric states in monolayered magnets through van der Waals interfacial interactions.