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Lamellar-structured anodes based on lithiophilic gradient enable dendrite-free lithium metal batteries with high capacity loading and fast-charging capability.

Authors :
Liu, Yucheng
Sun, Chuang
Lu, Yuhao
Lin, Xiaoping
Chen, Maohua
Xie, Yuansen
Lai, Chao
Yan, Wen
Source :
Chemical Engineering Journal. Jan2023:Part 2, Vol. 451, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

[Display omitted] • Lamellar-structured CNT/MXene/SnO 2 host based on lithiophilic gradient is prepared. • Li deposition is guided in a bottom-up manner to inhibit dendrite growth. • The host accommodates metallic Li up to 8 mAh cm−2 with 4.6% volume expansion. • The anodes can be cycled at 40 mA cm−2 (symmetric cell) and 10C (full cell). Lithium (Li) metal batteries have attracted much attention due to extremely high energy density. However, safety concerns and limited lifetime associated with dendrite growth of Li anodes, especially at high capacity loadings and high rates, hamper their practical application. Here, we report the construction of lamellar-structured lithium host containing carbon nanotubes (CNTs), MXene nanosheets, and SnO 2 nanoparticles via a simple step-by-step vacuum filtration method. The architecture is based on the lithiophilic gradient of each component, in which highly-lithiophilic SnO 2 nanoparticles uniformly anchor on the lithiophilic MXene current collector, and lithiophobic CNTs act as the top protective layer. In this way, Li electrodeposition is spatially guided in a bottom-up mode free from dendrite growth. Consequently, the CNT/MXene/SnO 2 scaffold accommodates a high capacity loading of 8 mAh cm−2 with only 4.6 % volume expansion. Furthermore, the Li@CNT/MXene/SnO 2 electrode achieves fast-charging capability and long-term cycling stability in both symmetric cells (40 mA cm−2) and full cells (10C). This work demonstrates an efficient approach to construct dendrite-free anodes for durable and high-power lithium metal batteries. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13858947
Volume :
451
Database :
Academic Search Index
Journal :
Chemical Engineering Journal
Publication Type :
Academic Journal
Accession number :
159564907
Full Text :
https://doi.org/10.1016/j.cej.2022.138570