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A Volume Self-Regulation MoS2Superstructure Cathode for Stable and High Mass-Loaded Zn-Ion Storage

Authors :
Yao, Zeying
Zhang, Wei
Ren, Xiaochuan
Yin, Yaru
Zhao, Yuanxin
Ren, Zhiguo
Sun, Yuanhe
Lei, Qi
Wang, Juan
Wang, Lihua
Ji, Te
Huai, Ping
Wen, Wen
Li, Xiaolong
Zhu, Daming
Tai, Renzhong
Source :
ACS Nano; August 2022, Vol. 16 Issue: 8 p12095-12106, 12p
Publication Year :
2022

Abstract

Engineering multifunctional superstructure cathodes to conquer the critical issue of sluggish kinetics and large volume changes associated with divalent Zn-ion intercalation reactions is highly desirable for boosting practical Zn-ion battery applications. Herein, it is demonstrated that a MoS2/C19H42N+(CTAB) superstructure can be rationally designed as a stable and high-rate cathode. Incorporation of soft organic CTAB into a rigid MoS2host forming the superlattice structure not only effectively initiates and smooths Zn2+transport paths by significantly expanding the MoS2interlayer spacing (1.0 nm) but also endows structural stability to accommodate Zn2+storage with expansion along the MoS2in-plane, while synchronous shrinkage along the superlattice interlayer achieves volume self-regulation of the whole cathode, as evidenced by in situsynchrotron X-ray diffraction and substantial ex situcharacterizations. Consequently, the optimized superlattice cathode delivers high-rate performance, long-term cycling stability (∼92.8% capacity retention at 10 A g–1after 2100 cycles), and favorable flexibility in a pouch cell. Moreover, a decent areal capacity (0.87 mAh cm–2) is achieved even after a 10-fold increase of loading mass (∼11.5 mg cm–2), which is of great significance for practical applications. This work highlights the design of multifunctional superlattice electrodes for high-performance aqueous batteries.

Details

Language :
English
ISSN :
19360851 and 1936086X
Volume :
16
Issue :
8
Database :
Supplemental Index
Journal :
ACS Nano
Publication Type :
Periodical
Accession number :
ejs60541105
Full Text :
https://doi.org/10.1021/acsnano.2c02330