Sliding-mediated ferroelectric phase transition in CuInP2S6 under pressure

Author:

Zhou Zhou1,Zhang Jun-Jie2ORCID,Turner Gemma F.3ORCID,Moggach Stephen A.3ORCID,Lekina Yulia4ORCID,Morris Samuel5ORCID,Wang Shun1ORCID,Hu Yiqi1,Li Qiankun1,Xue Jinshuo1,Feng Zhijian1,Yan Qingyu1,Weng Yuyan1ORCID,Xu Bin1ORCID,Fang Yong6,Shen Ze Xiang4ORCID,Fang Liang1ORCID,Dong Shuai2ORCID,You Lu1ORCID

Affiliation:

1. School of Physical Science and Technology, Jiangsu Key Laboratory of Thin Films, Soochow University 1 , Suzhou 215006, China

2. Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics, Southeast University 2 , Nanjing 211189, China

3. School of Molecular Sciences, The University of Western Australia 3 , 35 Stirling Highway, Crawley (Perth), Western Australia 6009, Australia

4. Centre for Disruptive Photonic Technologies, Nanyang Technological University 4 , Singapore 637371, Singapore

5. Facility for Analysis, Characterisation, Testing and Simulation (FACTS), Nanyang Technological University 5 , Singapore 639798, Singapore

6. Jiangsu Laboratory of Advanced Functional Materials, School of Electronic and Information Engineering, Changshu Institute of Technology 6 , Changshu 215500, China

Abstract

Interlayer stacking order has recently emerged as a unique degree of freedom to control crystal symmetry and physical properties in two-dimensional van der Waals (vdW) materials and heterostructures. By tuning the layer stacking pattern, symmetry-breaking and electric polarization can be created in otherwise non-polar crystals, whose polarization reversal depends on the interlayer sliding motion. Herein, we demonstrate that in a vdW layered ferroelectric, its existing polarization is closely coupled to the interlayer sliding driven by hydrostatic pressure. Through combined structural, electrical, vibrational characterizations, and theoretical calculations, we clearly map out the structural evolution of CuInP2S6 under pressure. A tendency toward a high polarization state is observed in the low-pressure region, followed by an interlayer-sliding-mediated phase transition from a monoclinic to a trigonal phase. Along the transformation pathway, the displacive-instable Cu ion serves as a pivot point that regulates the interlayer interaction in response to external pressure. The rich phase diagram of CuInP2S6, which is enabled by stacking orders, sheds light on the physics of vdW ferroelectricity and opens an alternative route to tailoring long-range order in vdW layered crystals.

Funder

Australian Research Council

National Natural Science Foundation of China

Major Basic Research Project of the Natural Science Foundation of the Jiangsu Higher Education Institutions

Science and Technology Program of Suzhou

Publisher

AIP Publishing

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