Dynamic Phase Transition Leading to Extraordinary Plastic Deformability of Thermoelectric SnSe2 Single Crystal

Author:

Ge Bangzhi12,Li Chao3,Lu Weiqun4,Ye Haolin1,Li Ruoyan1,He Wenke5,Wei Zhilei2,Shi Zhongqi2,Kim Dasol6,Zhou Chongjian1ORCID,Zhu Menghua1,Wuttig Matthias67,Yu Yuan6ORCID

Affiliation:

1. State Key Laboratory of Solidification Processing and Key Laboratory of Radiation Detection Materials and Devices Ministry of Industry and Information Technology Northwestern Polytechnical University Xi'an 710072 China

2. State Key Laboratory for Mechanical Behavior of Materials Xi'an Jiaotong University Xi'an 710049 China

3. The Fifth Electronics Research Institute of Ministry of Industry and Information Technology Guangzhou 510006 China

4. Institute of Advanced Semiconductors and Zhejiang Provincial Key Laboratory of Power Semiconductor Materials and Devices Hangzhou Innovation Center Zhejiang University Hangzhou 311200 China

5. Institute of Fundamental and Frontier Sciences University of Electronic Science and Technology of China 610054 Chengdu China

6. Institute of Physics (IA) RWTH Aachen University 52056 Aachen Germany

7. Peter Grünberg Institut (PGI 10) Forschungszentrum Jülich 52425 Jülich Germany

Abstract

AbstractPlastic/ductile inorganic van der Waals (vdW) thermoelectric semiconductors offer transformative advantages for high‐performance flexible thermoelectric devices, which can displace the self‐charge system of wearable electronics. However, the chemical origin of their plasticity remains unclear. Here, it is reported that the exceptionally large plastic strain of the bulk SnSe2 crystal results from its polytype conversion under an external force. The SnSe2 single crystal consists of a large‐period polytype with 18R low‐symmetry structure rather than the trigonal and hexagonal‐phase that are frequently observed in the polycrystalline specimen. In situ applied pressure to the specimen drives a phase transition from low to high‐symmetry, that is, from 18R to 4H, and finally to 2H‐SnSe2. First principle calculations corroborate that the dynamic phase transition is a pressure‐activated process and only 15 MPa pressure erases their energy gaps, consistent with experimentally measured strain–stress curves. This dynamic phase transition results in superior and near isotropic plasticity along the direction parallel and perpendicular to the cleavage plane.

Funder

State Key Laboratory of Solidification Processing

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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