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Unleash sodium storage potential of MoS2 nanosheets: Generating favorable kinetics from optimal crystallinity and elaborate structure.

Authors :
Gan, Zihan
Liu, Lei
Hai, Pengqi
Li, Long
Gao, Yuan
Yin, Junyi
Li, Mingyan
Wu, Chao
Ai, Wei
Cheng, Yonghong
Xu, Xin
Source :
Journal of Power Sources. Jun2023, Vol. 570, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Metal oxides with high crystallinities have been reported to exhibit better ion storage performances, which demonstrates the significance of controlling the crystallinity as a facile and economical method to synthesize high-performance electrode materials. However, the relationship between crystallinity and charge storage property remains unclear for transition metal disulfides (TMDs). In this work, we employ a series of MoS 2 -based electrode materials with different crystallinities as a case to study the trend in sodium ion (Na+) storage characteristics of TMDs with varying crystallinity. Structure characterizations prove that the crystallinity of MoS 2 improves with the increase in calcination temperature. Electrochemical tests and kinetic analyses indicate that MoS 2 -based electrode material with higher crystallinity shows better high-rate Na+ storage performance and stronger pseudocapacitive response. Finally, we carry out density functional theory calculations to study Na+ diffusion behaviors in MoS 2 with different crystallinities, and we prove that MoS 2 with higher crystallinity possesses better Na+ diffusion kinetics. The conclusions of this work provide beneficial guidance for the rational design of TMDs toward superior high-rate ion storage. • The relationship between the crystallinity of MoS 2 and Na+ storage performance was investigated for the first time. • MoS 2 with higher crystallinity showed better electrochemical characteristics. • A lower Na+ diffusion energy barrier was found in MoS 2 with higher crystallinity. • MoS 2 /heteroatom-modified carbon composite showed potential in practical use. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03787753
Volume :
570
Database :
Academic Search Index
Journal :
Journal of Power Sources
Publication Type :
Academic Journal
Accession number :
163260138
Full Text :
https://doi.org/10.1016/j.jpowsour.2023.233028