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Enhancing the Rapid Na-Storage Performance via Electron/Ion Bridges through GeS/Graphene Heterojunction.

作者信息

Ou Xing, Xiao Zhiming, Zhang Jia-Feng, Wang Chunhui, Wang Dong, Zhang Bao, Wu Yingpeng

机构信息

School of Metallurgy and Environment, Central South University, No. 932 South Lushan Road, Changsha, Hunan 410083, P.R. China.

State Key Laboratory of Chem/Bio-Sensing and Chemometrics, Provincial Hunan Key Laboratory for Graphene Materials and Devices, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, P.R. China.

出版信息

ACS Nano. 2020 Oct 27;14(10):13952-13963. doi: 10.1021/acsnano.0c06371. Epub 2020 Sep 24.

Abstract

Hybridizing carbonous matrix into metal sulfide is confirmed as an effective strategy to enhance electrode conductance and structure stability. However, a comprehensive understanding of the interface reaction mechanism between active materials and carbon substrate is still urgently needed. Based on the band energy theory, a route to enhance the rate ability for electrode is exploited on regulating interfaces of substrates/active heterojunction. Herein, the highly stable Na-storage performance of GeS/3DG is delicately designed, where the hierarchical structure is enabled by uniformly overcoating GeS nanograins with graphene matrix. Different from the widespread doping route of active materials for fast ion transfer, we focus on the effects of interface regulation on the high-rate Na ion-storage performance of substrate/active materials. Here, a well-designed interface of the C-Ge bond at the heterointerface induced by hierarchical GeS/graphene heterojunction is pioneeringly explored, which can result in a fast electron transfer by reducing electron gathering polarization. More importantly, defects in graphene can alleviate the polarization aroused by ion concentration, which not only offers anchoring/doping sites for C-Ge bond but also provides extra ion channels for Na-ion transportation into GeS. This interface regulation of constructing metal-carbon bonds will shine light on the reaction kinetics and interface stability and contribute to the fundamental understanding of interface reaction mechanisms for metal sulfide anode materials.

摘要

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