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Clear Representation of Surface Pathway Reactions at Ag Nanowire Cathodes in All-Solid Li–O<sub>2</sub> Batteries

Hao Wang, Ning Zhao, Zhijie Bi, Shenghan Gao, Qiushi Dai, Tingting Yang, Jiawei Wang, Zhiqing Jia, Zhangquan Peng, Jianyu Huang, Yong Wan, Xiangxin Guo

2021ACS Applied Materials & Interfaces25 citationsDOI

Abstract

All-solid Li–O2 batteries have been constructed with Ag nanowire (AgNW) cathodes coated on Au-buffered garnet ceramic electrolytes and Li anodes on the other sides. Benefiting from the clean contacts of Li+, e–, and O2 on the AgNWs, the surface pathway reactions are demonstrated. Upon discharge, two types of Li2O2 morphologies appear. The film-like Li2O2 forms around the smooth surfaces of AgNWs, and hollow disk-like Li2O2 forms at the joints in between the AgNWs as well as at the garnet/AgNW interfaces. The formation of films and hollow disks is in accordance with the process of O2 + Li+ + e– → LiO2 and 2LiO2 → Li2O2 + O2, indicating that the disproportionation of LiO2 occurs at the solid interfaces. During the initial charge, decomposition occurs below the potential of 3.5 V, indicating the process of Li2O2 → LiO2 + Li+ + e– and LiO2 → Li+ + e– + O2 rather than Li2O2 → 2Li+ + 2e– + O2. The Li2O2 decomposition starts at the AgNWs/Li2O2 interfaces, causing the film-like Li2O2 to shrink and the gas to release, followed by the collapse of hollow disk-like Li2O2. The results here clearly disclose the Li–O2 reaction mechanism at the all-solid interfaces, facilitating a deep understanding of key factors influencing the electrochemical performance of the solid-state Li–O2 batteries.

Topics & Concepts

Materials scienceDisproportionationCathodeNanowireChemical engineeringElectrolyteAnodeDecompositionNanotechnologyElectrochemistryCeramicElectrodeComposite materialPhysical chemistryOrganic chemistryCatalysisChemistryEngineeringAdvancements in Battery MaterialsAdvanced Battery Materials and TechnologiesAdvanced Battery Technologies Research
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