Boosting oxygen reduction activity and enhancing stability through structural transformation of layered lithium manganese oxide

Author:

Zhong Xuepeng,Oubla M’hamed,Wang Xiao,Huang Yangyang,Zeng Huiyan,Wang Shaofei,Liu Kun,Zhou JianORCID,He Lunhua,Zhong Haihong,Alonso-Vante NicolasORCID,Wang Chin-WeiORCID,Wu Wen-Bin,Lin Hong-Ji,Chen Chien-Te,Hu ZhiweiORCID,Huang Yunhui,Ma JiweiORCID

Abstract

AbstractStructural degradation in manganese oxides leads to unstable electrocatalytic activity during long-term cycles. Herein, we overcome this obstacle by using proton exchange on well-defined layered Li2MnO3 with an O3-type structure to construct protonated Li2-xHxMnO3-n with a P3-type structure. The protonated catalyst exhibits high oxygen reduction reaction activity and excellent stability compared to previously reported cost-effective Mn-based oxides. Configuration interaction and density functional theory calculations indicate that Li2-xHxMnO3-n has fewer unstable O 2p holes with a Mn3.7+ valence state and a reduced interlayer distance, originating from the replacement of Li by H. The former is responsible for the structural stability, while the latter is responsible for the high transport property favorable for boosting activity. The optimization of both charge states to reduce unstable O 2p holes and crystalline structure to reduce the reaction pathway is an effective strategy for the rational design of electrocatalysts, with a likely extension to a broad variety of layered alkali-containing metal oxides.

Funder

National Natural Science Foundation of China

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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