Electrolyte design for LiF-rich solid–electrolyte interfaces to enable high-performance microsized alloy anodes for batteries

被引:5
|
作者
Ji Chen
Xiulin Fan
Qin Li
Hongbin Yang
M. Reza Khoshi
Yaobin Xu
Sooyeon Hwang
Long Chen
Xiao Ji
Chongyin Yang
Huixin He
Chongmin Wang
Eric Garfunkel
Dong Su
Oleg Borodin
Chunsheng Wang
机构
[1] University of Maryland College Park,Department of Chemical and Biomolecular Engineering
[2] The State University of New Jersey,Department of Chemistry, Rutgers
[3] The State University of New Jersey,Department of Chemistry, Rutgers
[4] Pacific Northwest National Laboratory,Environmental Molecular Sciences Laboratory
[5] Brookhaven National Laboratory,Center for Functional Nanomaterials
[6] US Army Combat Capabilities Development Command Army Research Laboratory,Battery Science Branch, Sensor and Electron Devices Directorate
[7] University of Maryland College Park,Department of Chemistry and Biochemistry
来源
Nature Energy | 2020年 / 5卷
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摘要
Lithium batteries with Si, Al or Bi microsized (>10 µm) particle anodes promise a high capacity, ease of production, low cost and low environmental impact, yet they suffer from fast degradation and a low Coulombic efficiency. Here we demonstrate that a rationally designed electrolyte (2.0 M LiPF6 in 1:1 v/v mixture of tetrahydrofuran and 2-methyltetrahydrofuran) enables 100 cycles of full cells that contain microsized Si, Al and Bi anodes with commercial LiFePO4 and LiNi0.8Co0.15Al0.05O2 cathodes. Alloy anodes with areal capacities of more than 2.5 mAh cm−2 achieved >300 cycles with a high initial Coulombic efficiency of >90% and average Coulombic efficiency of >99.9%. These improvements are facilitated by the formation of a high-modulus LiF–organic bilayer interphase, in which LiF possesses a high interfacial energy with the alloy anode to accommodate plastic deformation of the lithiated alloy during cycling. This work provides a simple yet practical solution to current battery technology without any binder modification or special fabrication methods.
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页码:386 / 397
页数:11
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