High‐Pressure‐Field Induced Synthesis of Ultrafine‐Sized High‐Entropy Compounds with Excellent Sodium‐Ion Storage

Author:

Liang Ming1,Xie Haonan1,Chen Biao12,Qin Hongye3,Zhang Hanwen45,Wang Jingyi1,Sha Junwei1,Ma Liying1,Liu Enzuo1,Kang Jianli1,Shi Chunsheng1,He Fang1,Han Xiaopeng12,Hu Wenbin124,Zhao Naiqin12ORCID,He Chunnian124

Affiliation:

1. School of Materials Science and Engineering Tianjin Key Laboratory of Composite and Functional Materials Key Laboratory of Advanced Ceramics and Machining Technology (Ministry of Education) Tianjin University Tianjin 300350 People's Republic of China

2. National Industry-Education Platform of Energy Storage Tianjin University 135 Yaguan Road Tianjin 300350 People's Republic of China

3. Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education) Renewable Energy Conversion and Storage Center College of Chemistry Nankai University Tianjin 300071 China

4. Joint School of National University of Singapore and Tianjin University International Campus of Tianjin University Binhai New City Fuzhou 350207 People's Republic of China

5. Department of Physics National University of Singapore 2 Science Drive 3 117542 Singapore Singapore

Abstract

AbstractEmerging high entropy compounds (HECs) have attracted huge attention in electrochemical energy‐related applications. The features of ultrafine size and carbon incorporation show great potential to boost the ion‐storage kinetics of HECs. However, they are rarely reported because high‐temperature calcination tends to result in larger crystallites, phase separation, and carbon reduction. Herein, using the NaCl self‐assembly template method, by introducing a high‐pressure field in the calcination process, the atom diffusion and phase separation are inhibited for the general formation of HECs, and the HEC aggregation is inhibited for obtaining ultrafine size. The general preparation of ultrafine‐sized (<10 nm) HECs (nitrides, oxides, sulfides, and phosphates) anchored on porous carbon composites is realized. They are demonstrated by combining advanced characterization technologies with theoretical computations. Ultrafine‐sized high entropy sulfides‐MnFeCoCuSnMo/porous carbon (HES‐MnFeCoCuSnMo/PC) as representative anodes exhibit excellent sodium‐ion storage kinetics and capacities (a high rating capacity of 278 mAh g−1 at 10 A g−1 for full cell and a high cycling capacity of 281 mAh g−1 at 20 A g−1 after 6000 cycles for half cell) due to the combining advantages of high entropy effect, ultrafine size, and PC incorporation. Our work provides a new opportunity for designing and fabricating ultrafine‐sized HECs.

Funder

National Science Fund for Distinguished Young Scholars

National Natural Science Foundation of China

Natural Science Foundation of Tianjin Municipality

Publisher

Wiley

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