High‐Entropy Anti‐Perovskites with Enhanced Negative Thermal Expansion Behavior

Author:

Yuan Xiuliang1,Wang Bing1,Sun Ying1ORCID,Guo Huaiming1,Shi Kewen2,Deng Sihao34,He Lunhua356,Lu Huiqing7,Zhang Hong89,Xu Shengdi1,Du Yi1,Hao Weichang1,Chu Shengqi4,Ma Zhijie1,An Shihai1,Cui Jin2,Hu Dongmei1,Han Huiming1,Wang Cong2ORCID

Affiliation:

1. School of Physics Beihang University Beijing 100191 China

2. School of Integrated Circuit Science and Engineering Beihang University Beijing 100191 China

3. Spallation Neutron Source Science Center Dongguan 523803 China

4. Institute of High Energy Physics Chinese Academy of Sciences Beijing 100049 China

5. Beijing National Laboratory for Condensed Matter Physics Institute of Physics Chinese Academic of Sciences Beijing 100190 China

6. Songshan Lake Materials Laboratory Dongguan 523808 China

7. Key Laboratory for Photonic and Electronic Bandgap Materials Ministry of Education School of Physics and Electronic Engineering Harbin Normal University Harbin 150025 China

8. Key Laboratory of Electromagnetic Materials and Devices National Center for International Research on Photoelectric and Energy Materials School of Materials and Energy Yunnan University Kunming 650091 China

9. Electron Microscopy Center Yunnan University Kunming 650091 China

Abstract

AbstractThe negative thermal expansion (NTE) materials, which can act as thermal‐expansion compensators to counteract the positive thermal expansion, have great applications merit in precision engineering. However, the exploration of NTE behavior with a wide temperature range has reached its upper ceiling through traditional doping strategies due to composition limitations. In this paper, the unique sluggish characteristics and extended optimization space in empirically screened high‐entropy anti‐perovskite (HEAP) are utilized to broaden the NTE temperature range. Typically, the NTE temperature range in Mn3Cu0.2Zn0.2Ga0.2Ge0.2Mn0.2N is broadened to ΔT = 235 K (5 K ≤ T ≤ 240 K), which is two or three times wider than that of traditional low‐entropy doping systems. The neutron diffraction analysis reveals a unique sluggish characteristic in magnetic phase transition which survives in an ultra‐wide temperature range of 5 K ≤ T ≤ 350 K (ΔT = 345 K). The sluggish characteristic is further experimentally proved to come from disturbed phase transition dynamics due to distortion in atomic spacing and chemical environmental fluctuation observed by the spherical aberration‐corrected electron microscope. The demonstration provides a unique paradigm for broadening the temperature range of NTE materials through entropy engineering.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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