Cation-Vacancy Engineering Modulated Perovskite Oxide for Boosting Electrocatalytic Conversion of Polysulfides

Zhe Bai, Zhenhua Wang*, Tan Wang, Zeyu Wu, Xiaotian Gao, Yu Bai, Guoxiu Wang*, Kening Sun*

*此作品的通讯作者

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摘要

Lithium-sulfur batteries face challenges like polysulfide shuttle and slow conversion kinetics, hindering their practical applications in renewable energy storage and electric vehicles. Herein, a solution to solve this issue is reported by using a cation vacancy engineering strategy with rational synthesis of La-deficient LaCoO3 (LCO-VLa). The introduction of cation vacancies in LCO-VLa modifies the geometric structure of coordinating atoms, exposing Co-rich surface with more catalytically active surfaces. Meanwhile, the d-band center of LCO-VLa shifts toward the Fermi level, enhancing polysulfide adsorption. Furthermore, multivalent cobalt ions (Co3+/Co4+) induced by charge compensation enhance the electrical conductivity of LCO-VLa, accelerating electron transfer processes and improving catalytic performance. Theoretical calculations and experimental characterizations demonstrate that La-deficient LCO-VLa effectively suppresses the polysulfide shuttle, reduces the energy barrier for polysulfide conversion, and accelerates redox reaction kinetics. LCO-VLa-based batteries demonstrate exceptional rate performance and cycling stability, retaining 70% capacity after nearly 500 cycles at 1.0 C, with a minimal decay rate of 0.055% per cycle. These findings highlight the significance of cation vacancy engineering for exploring precise structure-activity relationships during polysulfides conversion, facilitating the rational design of catalysts at the atomic level for lithium-sulfur batteries.

源语言英语
期刊Advanced Functional Materials
DOI
出版状态已接受/待刊 - 2024

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Bai, Z., Wang, Z., Wang, T., Wu, Z., Gao, X., Bai, Y., Wang, G., & Sun, K. (已接受/印刷中). Cation-Vacancy Engineering Modulated Perovskite Oxide for Boosting Electrocatalytic Conversion of Polysulfides. Advanced Functional Materials. https://doi.org/10.1002/adfm.202419105