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Highly-confined, micro-Sb/C@MXene 3D architectures with strengthened interfacial bonding for high volumetric sodium-ion storage.

Authors :
Liang, Yawen
Wang, Zhuosen
Xu, Zhenyang
Li, Shiquan
Luo, Hao
Xu, Chunyang
Cui, Xinwei
Source :
Applied Surface Science. Apr2024, Vol. 651, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

Micro-sized Sb particles were dually encapsulated in carbon layer and MXene network with robust interfacial bonding of Sb-O-C and C-O-Ti improving the volumetric performance. [Display omitted] • Micro-sized Sb dually encapsulated in carbon layer and Ti 3 C 2 T x MXene network. • Robust interfacial bonding of Sb O C and C O Ti is formed. • The robust interfacial bonding promotes efficient ion/electron transport. High-theoretical-capacity antimony (Sb) anodes hold promise for high-performing sodium-ion storage, yet suffer from huge volume change. In solving this obstacle, traditional strategies normally incorporate nanosized Sb with low-density conductive materials, which, in turn, sacrifice volumetric performance. Here, we report micro-sized Sb particles (m-Sb) dually encapsulated in carbon layer and densely-packed Ti 3 C 2 T x MXene network (m-Sb/C@MXene), forming a highly-confined composite with robust interfacial bonding of Sb O C between m-Sb and the carbon layer, and C O Ti between the carbon layer and MXene. The m-Sb/C@MXene anode displays a high volumetric capacity of 482.6 mAh cm−3 and a high volumetric capacity retention of 407.1 mAh cm−3 after 100 cycles at 0.1 A/g. A high-rate capacity of 191.0 mAh cm−3 at 10 A/g has also been achieved. Such superior performance stems from its unique architecture highly confined by the conductive and elastic network, which can provide fast electron/ion transport and effectively buffer volume expansion. Furthermore, ex-situ X-ray diffraction reveals that this hierarchical structure not only stabilizes m-Sb but also enhances ion transport kinetics by promoting the amorphization of m-Sb, thus delivers the excellent capacity and rate performance. This work offers an effective design of high-volumetric-capacity anode materials for their practical applications in sodium-ion energy storage. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
651
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
174758333
Full Text :
https://doi.org/10.1016/j.apsusc.2023.159234