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