Trapping Lithium Selenides with Evolving Heterogeneous Interfaces for High‐Power Lithium‐Ion Capacitors

Author:

Tao Shusheng1,Momen Roya2,Luo Zheng1,Zhu Yirong3,Xiao Xuhuan1,Cao Ziwei1,Xiong Dengyi1,Deng Wentao1,Liu Youcai1,Hou Hongshuai1,Zou Guoqiang1,Ji Xiaobo1ORCID

Affiliation:

1. College of Chemistry and Chemical Engineering Central South University Changsha Hunan 410083 P. R. China

2. Department of Chemistry and Shenzhen Grubbs Institute Southern University of Science and Technology Shenzhen Guangdong 518055 P. R. China

3. College of Materials and Advanced Manufacturing Hunan University of Technology Zhuzhou Hunan 412007 P. R. China

Abstract

AbstractTransition metal selenides anodes with fast reaction kinetics and high theoretical specific capacity are expected to solve mismatched kinetics between cathode and anode in Li‐ion capacitors. However, transition metal selenides face great challenges in the dissolution and shuttle problem of lithium selenides, which is the same as Li‐Se batteries. Herein, inspired by the density functional theory calculations, heterogeneous can enhance the adsorption of Li2Se relative to single component selenide electrodes, thus inhibiting the dissolution and shuttle effect of Li2Se. A heterostructure material (denoted as CoSe2/SnSe) with the ability to evolve continuously (CoSe2/SnSe→Co/Sn→Co/Li13Sn5) is successfully designed by employing CoSnO3‐MOF as a precursor. Impressively, CoSe2/SnSe heterostructure material delivers the ultrahigh reversible specific capacity of 510 mAh g−1 after 1000 cycles at the high current density of 4 A g−1. In situ XRD reveals the continuous evolution of the interface based on the transformation and alloying reactions during the charging and discharging process. Visualizations of in situ disassembly experiments demonstrate that the continuously evolving interface inhibits the shuttle of Li2Se. This research proposes an innovative approach to inhibit the dissolution and shuttling of discharge intermediates (Li2Se) of metal selenides, which is expected to be applied to metal sulfides or Li‐Se and Li‐S energy storage systems.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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