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Metallic bismuth has drawn attention as a promising alloying anode for advanced potassium ion batteries (PIBs). However, serious volume expansion/electrode pulverization and sluggish kinetics always lead to its inferior cycling and rate properties for practical applications. Therefore, advanced Bi-based anodes via structural/compositional optimization and sur-/interface design are needed. Herein, we develop a bottom-up avenue to fabricate nanoscale Bi encapsulated in a 3D N-doped carbon nanocages (Bi@N-CNCs) framework with a void space by using a novel Bi-based metal-organic framework as the precursor. With elaborate regulation in annealing temperatures, the optimized Bi@N-CNCs electrode exhibits large reversible capacities and long-duration cyclic stability at high rates when evaluated as competitive anodes for PIBs. Insights into the intrinsic K+ -storage processes of the Bi@N-CNCs anode are put forward from comprehensive in situ characterizations.
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Zehang Sun
University of Jinan
Yang Liu
University of Electronic Science and Technology of China
Weibin Ye
Shantou University
Angewandte Chemie International Edition
University of Science and Technology of China
Xiamen University
Collaborative Innovation Center of Chemistry for Energy Materials
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Sun et al. (Tue,) studied this question.
synapsesocial.com/papers/69d7b5a13fae90fd6048ff2c — DOI: https://doi.org/10.1002/anie.202016082