School of Physics and State Key Laboratory of Crystal Materials, Shandong University, Jinan 250100, Shandong, China.
Nanoscale. 2019 Jan 17;11(3):1103-1110. doi: 10.1039/c8nr08270g.
The coexistence of ferroelectricity and magnetism in two-dimensional (2D) multiferroic materials with the thickness of few atomic layers offers a tantalizing potential for high-density multistate data storage but has been rarely verified in experiments. Herein, we propose a realistic 2D multiferroic material, VOCl2 monolayer, which is mechanically strippable from the bulk material. It has a large intrinsic in-plane spontaneous electric polarization of 312 pC m-1 and stable antiferromagnetism with the Néel temperature of 177 K. The off-center displacement of V ions that contributes to the ferroelectricity can be ascribed to the pseudo Jahn-Teller distortion. The energy barrier (0.18 eV) between two ferroelectric states with opposite electronic polarization renders the thermodynamic stability of the ferroelectricity and the switchability of the electric polarizations. The interplay between electric polarization and magnetism would lead to tunable ferroelectricity. Our findings are expected to offer a realistic platform for the study of 2D multiferroic materials as well as their applications in miniaturized memory devices.
二维(2D)多层铁电材料中同时存在铁电性和磁性,为高密度多态数据存储提供了诱人的潜力,但在实验中很少得到验证。在此,我们提出了一种可行的 2D 多铁材料-VOCl2 单层材料,它可以从体材料机械剥离。它具有 312pC/m-1 的大固有面内自发极化强度和稳定的反铁磁有序,奈尔温度为 177K。导致铁电性的 V 离子的非中心位移可以归因于赝 Jahn-Teller 畸变。两个具有相反电子极化的铁电态之间的能量势垒(0.18eV)赋予了铁电性的热力学稳定性和电极化的可切换性。电极化和磁之间的相互作用将导致铁电性可调谐。我们的研究结果有望为 2D 多铁材料的研究以及在小型化存储器件中的应用提供一个实际的平台。