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两性动态晶体中几何铁电和滑动铁电的直接观测

Direct observation of geometric and sliding ferroelectricity in an amphidynamic crystal.

作者信息

Miao Le-Ping, Ding Ning, Wang Na, Shi Chao, Ye Heng-Yun, Li Linglong, Yao Ye-Feng, Dong Shuai, Zhang Yi

机构信息

Institute for Science and Applications of Molecular Ferroelectrics, Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Zhejiang Normal University, Jinhua, China.

Chaotic Matter Science Research Center, Department of Materials, Metallurgy and Chemistry & Jiangxi Provincial Key Laboratory of Functional Molecular Materials Chemistry, Jiangxi University of Science and Technology, Ganzhou, China.

出版信息

Nat Mater. 2022 Oct;21(10):1158-1164. doi: 10.1038/s41563-022-01322-1. Epub 2022 Aug 4.

Abstract

Sliding ferroelectricity is a recently observed polarity existing in two-dimensional materials. However, due to the weak polarization and poor electrical insulation in these materials, existing experimental evidences are indirect and mostly based on nanoscale transport properties or piezoresponse force microscopy. We report the direct observation of sliding ferroelectricity, using a high-quality amphidynamic single crystal (15-crown-5)CdCl, which possesses a large bandgap and so allows direct measurement of polarization-electric field hysteresis. This coordination polymer is a van der Waals material, which is composed of inorganic stators and organic rotators as determined by X-ray diffraction and NMR characterization. From density functional theory calculations, we find that after freezing the rotators, an electric dipole is generated in each layer driven by the geometric mechanism, while a comparable ferroelectric polarization originates from the interlayer sliding. The net polarization of these two components can be directly measured and manipulated. Our finding provides insight into low-dimensional ferroelectrics, especially control of the synchronous dynamics of rotating molecules and sliding layers in solids.

摘要

滑动铁电性是最近在二维材料中观测到的一种极性。然而,由于这些材料中的极化较弱且电绝缘性较差,现有的实验证据是间接的,大多基于纳米级输运性质或压电力显微镜。我们报告了对滑动铁电性的直接观测,使用了高质量的两性动态单晶(15-冠-5)CdCl,它具有较大的带隙,因此能够直接测量极化-电场滞后。这种配位聚合物是一种范德华材料,通过X射线衍射和核磁共振表征确定其由无机定子和有机转子组成。从密度泛函理论计算中,我们发现冻结转子后,由几何机制驱动在每层中产生一个电偶极,而相当的铁电极化源于层间滑动。这两个分量的净极化可以直接测量和操控。我们的发现为低维铁电体提供了见解,特别是对固体中旋转分子和滑动层同步动力学的控制。

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