Freestanding Ammonium Vanadate Composite Cathodes with Lattice Self‐Regulation and Ion Exchange for Long‐Lasting Ca‐Ion Batteries

Author:

Wang Junjun12,Zhang Yadi3,Qiao Fan1,Jiang Yalong4,Yu Ruohan1,Li Jiantao5,Lee Sungsik6,Dai Yuhang1,Guo Fei2,Jiang Peie2,Zhang Lei1,An Qinyou17,He Guanjie2ORCID,Mai Liqiang17

Affiliation:

1. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan 430070 China

2. Department of Chemistry Christopher Ingold Laboratory University College London 20 Gordon Street London WC1H 0AJ UK

3. State Key Laboratory of Metal Matrix Composites School of Materials Science and Engineering Shanghai Jiao Tong University Shanghai 200240 China

4. State Key Laboratory of New Textile Materials and Advanced Processing Technologies Wuhan Textile University Wuhan 430200 China

5. Chemical Sciences and Engineering Division Argonne National Laboratory Lemont IL 60439 USA

6. X‐Ray Science Division Argonne National Laboratory Lemont IL 60439 USA

7. Hubei Longzhong Laboratory Wuhan University of Technology (Xiangyang Demonstration Zone) Xiangyang Hubei 441000 China

Abstract

AbstractCalcium‐ion batteries (CIBs) have emerged as a promising alternative for electrochemical energy storage. The lack of high‐performance cathode materials severely limits the development of CIBs. Vanadium oxides are particularly attractive as cathode materials for CIBs, and preinsertion chemistry is often used to improve their calcium storage performance. However, the room temperature cycling lifespan of vanadium oxides in organic electrolytes still falls short of 1000 cycles. Here, based on preinsertion chemistry, the cycling life of vanadium oxides is further improved by integrated electrode and electrolyte engineering. Utilizing a tailored Ca electrolyte, the constructed freestanding (NH4)2V6O16·1.35H2O@graphene oxide@carbon nanotube (NHVO‐H@GO@CNT) composite cathode achieves a 305 mAh g−1 high capacity and 10 000 cycles record‐long life. Additionally, for the first time, a Ca‐ion hybrid capacitor full cell is assembled and delivers a capacity of 62.8 mAh g−1. The calcium storage mechanism of NHVO‐H@GO@CNT based on a two‐phase reaction and the exchange of NH4+ and Ca2+ during cycling are revealed. The lattice self‐regulation of V─O layers is observed and the layered vanadium oxides with Ca2+ pillars formed by ion exchange exhibit higher capacity. This work provides novel strategies to enhance the calcium storage performance of vanadium oxides via integrated structural design of electrodes and electrolyte modification.

Funder

National Natural Science Foundation of China

National Basic Research Program of China

Natural Science Foundation of Hubei Province

Engineering and Physical Sciences Research Council

Publisher

Wiley

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