Improving the fast-charging capability of NbWO-based Li-ion batteries
Abstract
Abstract The discovery of Nb-W-O materials years ago marks the milestone of charging a lithium-ion battery in minutes. Nevertheless, for many applications, charging lithium-ion battery within one minute is urgently demanded, the bottleneck of which largely lies in the lack of fundamental understanding of Li+ storage mechanisms in these materials. Herein, by visualizing Li+ intercalated into representative Nb16W5O55, we find that the fast-charging nature of such material originates from an interesting rate-dependent lattice relaxation process associated with the Jahn-Teller effect. Furthermore, in situ electron microscopy further reveals a directional, [010]-preferred Li+ transport mechanism in Nb16W5O55 crystals being the “bottleneck” toward fast charging that deprives the entry of any desolvated Li+ through the prevailing non-(010) surfaces. Hence, we propose a machine learning-assisted interface engineering strategy to swiftly collect desolvated Li+ and relocate them to (010) surfaces for their fast intercalation. As a result, a capacity of ≈ 116 mAh g−1 (68.5% of the theoretical capacity) at 80 C (45 s) is achieved when coupled with a Li negative electrode.
Article Details
Authors (17)
Yaqing Guo
College of Chemistry and Materials Engineering
Chi Guo
Penghui Li
Wenjun Song
Weiyuan Huang
Chemical Sciences and Engineering Division
Junxin Yan
Xiaobin Liao
Kun He
Wuxin Sha
Xuemei Zeng
College of Chemistry and Materials Engineering
Xinyue Tang
Qingqing Ren
Shun Wang
Department of Mathematics
Khalil Amine
Pritzker School of Molecular Engineering
Anmin Nie
Tongchao Liu
Pritzker School of Molecular Engineering
Yifei Yuan
College of Chemistry and Materials Engineering