Ultrahigh Degree of Cationic Disorder, Configurational Entropy in New Type of High‐Entropy Pseudobrookite Phase

Author:

Wu Jinyu1,Zhang JinFeng1,Hu Xiaoxia1,Xie Haijiao2,Yan Liwen1,Hou Feng1,Liu Jiachen1,Ma Xiaohui1,Guo Anran1ORCID

Affiliation:

1. School of Materials Science and Engineering Key Lab of Advanced Ceramics and Machining Technology of Ministry of Education Tianjin University Tianjin 300072 China

2. Hangzhou Yanqu Information Technology Co., Ltd. Zhejiang 310003 China

Abstract

AbstractHigh‐entropy ceramics exhibit various excellent properties owing to their high configurational entropy, which is caused by multi‐principal elements sharing one lattice site. The configurational entropy will further increase significantly if multi‐principal elements randomly share two different lattice sites. For this purpose, pseudobrookite phase containing two cationic lattice sites (A and B sites) is selected, and corresponding high‐entropy pseudobrookite (M2+0.4M3+1.2)Ti1.4O5 is synthesized. Herein, the distribution of the 2‐valent and 3‐valent cations in the A and B sites are analysed in depth. The distance between the A and B sites in the crystal structure models which are constructed by the Rietveld analysis is calculated and defined as distance d. Meanwhile, the atomic column positions in the STEM images are quantified by a model‐based mathematical algorithm, and the corresponding distance d are calculated. By comparing the distance d, it is determine that the 2‐valent and 3‐valent cations are jointly and disorderly distributed in the A and B sites in high‐entropy (M2+0.4M3+1.2)Ti1.4O5. The density functional theory (DFT) simulations also demonstrate that this type of crystal structure is more thermodynamically stable. The higher degree of cationic disorder leads to a higher configurational entropy in high‐entropy (M2+0.4M3+1.2)Ti1.4O5, and endows high‐entropy (M2+0.4M3+1.2)Ti1.4O5 with very low thermal conductivity (1.187−1.249 W m−1 K−1).

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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