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铜插层双层CrI₃中铁磁性与铁电性的共存

Coexistence of Ferromagnetism and Ferroelectricity in Cu-Intercalated Bilayer CrI.

作者信息

Qian Zhonghua, Wang Yanbiao, Lu Jinlian, Wang Ziyu, Rui Xue, Zhu Tianying, Hua Baopei, Gu Guanjie, Peng Qiyuan, Guo Nini

机构信息

College of Physics Science and Technology, Yangzhou University, Yangzhou 225002, China.

Department of Fundamental Courses, Wuxi Institute of Technology, Wuxi 214121, China.

出版信息

ACS Omega. 2024 Mar 1;9(10):11478-11483. doi: 10.1021/acsomega.3c08360. eCollection 2024 Mar 12.

Abstract

Design of two-dimensional (2D) multiferroic materials with two or more ferroic orders in one structure is highly desired in view of the development of next-generation electronic devices. Unfortunately, experimental or theoretical discovery of 2D intrinsic multiferroic materials is rare. Using first-principles calculation methods, we report the realization of multiferroics that couple ferromagnetism and ferroelectricity by intercalating Cu atoms in bilayer CrI, Cu@bi-CrI ( = 0.03, 0.06, and 0.25). Our results show that the intercalation of Cu atoms leads to the inversion symmetry breaking of bilayer CrI and produces intercalation density-dependent out-of-plane electric polarization, around 18.84-90.31 pC·cm. Moreover, the switch barriers of Cu@bi-CrI in both polarization states are small, ranging from 0.31 to 0.69 eV. Furthermore, the magnetoelectric coupling properties of Cu@bi-CrI can be modulated via varying the metal ion intercalation density, and half-metal to semiconductor transition can be occurred by decreasing the intercalation density of metal ions. Our work paves a practical path for 2D magnetoelectron coupling devices.

摘要

鉴于下一代电子设备的发展,设计在一个结构中具有两种或更多种铁性有序的二维(2D)多铁性材料是非常有必要的。不幸的是,二维本征多铁性材料的实验或理论发现很少。利用第一性原理计算方法,我们报道了通过在双层CrI中插入Cu原子(Cu@bi-CrI, = 0.03、0.06和0.25)实现铁磁性和铁电性耦合的多铁性材料。我们的结果表明,Cu原子的插入导致双层CrI的反演对称性破缺,并产生与插入密度相关的面外电极化,约为18.84 - 90.31 pC·cm。此外,Cu@bi-CrI在两种极化状态下的开关势垒都很小,范围为0.31至0.69 eV。此外,Cu@bi-CrI的磁电耦合特性可以通过改变金属离子插入密度来调制,并且通过降低金属离子的插入密度可以发生从半金属到半导体的转变。我们的工作为二维磁电耦合器件铺平了一条切实可行的道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b716/10938309/a22c0ac5d30a/ao3c08360_0001.jpg

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