A customized strategy to design intercalation-type Li-free cathodes for all-solid-state batteries

Author:

Wang Da12,Yu Jia3,Yin Xiaobin1,Shao Sen4,Li Qianqian3,Wang Yanchao4,Avdeev Maxim56,Chen Liquan7,Shi Siqi132

Affiliation:

1. School of Materials Science and Engineering, Shanghai University , Shanghai 200444 , China

2. Zhejiang Laboratory , Hangzhou 311100, China

3. Materials Genome Institute, Shanghai University , Shanghai 200444 , China

4. State Key Laboratory of Superhard Materials & International Center for Computational Method and Software, Jilin University , Changchun 130012 , China

5. Australian Nuclear Science and Technology Organisation , Kirrawee DC , NSW 2232 , Australia

6. School of Chemistry, University of Sydney , Sydney 2006 , Australia

7. Institute of Physics, Chinese Academy of Sciences , Beijing 100190 , China

Abstract

AbstractPairing Li-free transition-metal-based cathodes (MX) with Li-metal anodes is an emerging trend to overcome the energy-density limitation of current rechargeable Li-ion technology. However, the development of practical Li-free MX cathodes is plagued by the existing notion of low voltage due to the long-term overlooked voltage-tuning/phase-stability competition. Here, we propose a p-type alloying strategy involving three voltage/phase-evolution stages, of which each of the varying trends are quantitated by two improved ligand-field descriptors to balance the above contradiction. Following this, an intercalation-type 2H-V1.75Cr0.25S4 cathode tuned from layered MX2 family is successfully designed, which possesses an energy density of 554.3 Wh kg−1 at the electrode level accompanied by interfacial compatibility with sulfide solid-state electrolyte. The proposal of this class of materials is expected to break free from scarce or high-cost transition-metal (e.g. Co and Ni) reliance in current commercial cathodes. Our experiments further confirm the voltage and energy-density gains of 2H-V1.75Cr0.25S4. This strategy is not limited to specific Li-free cathodes and offers a solution to achieve high voltage and phase stability simultaneously.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shanghai

Key Research Project of Zhejiang Lab

Publisher

Oxford University Press (OUP)

Subject

Multidisciplinary

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