Multidimensional encapsulation geometry boosting bismuth selenide anode material with fast kinetics for superior potassium-ion storage

Zhenzhen Wang, Shuangyan Qiao, Yanshu Zhao, Lingling Yuan, Ting Li, Shaokun Chong

Research output: Contribution to journalArticlepeer-review

Abstract

Conversion-alloying anode materials exhibit ultra-high theoretical specific capacity for potassium-ion batteries (PIBs) based on multi-electron transfer reaction. However, large volume variation and sluggish electrochemical kinetics have become key issues limiting its cyclability and rate capability. Herein, Bi2Se3 micro-flowers intertwined with one-dimensional carbon nanotube, anchored on two-dimensional reduced graphene oxide and encapsulated by three-dimensional N-doped C (Bi2Se3@rGO@NC/CNT) are constructed as anode materials for PIBs. The multidimensional hierarchical confinement effect boosts Bi2Se3 to exhibit fast electron/K-ion transport kinetics and great K-ion adsorption ability, as well as superior structure stability with the reduced lattice stress, where the stable existence of C-Se bond and Bi-O-C bonds plays an important role in maintaining interfacial stability of composite. It is illustrated that K-ion insertion into and extraction from Bi2Se3 via conversion-alloying dual-mechanism using Bi as the redox center based on 12-electron transfer per formular. Therefore, Bi2Se3@rGO@NC/CNT architecture contributes high initial specific capacity, excellent rate capability and cycling stability with ultra-long lifetime over 1000 cycles and low-capacity decay rate of 0.068 % per cycle. This work lays a theoretical and experimental basis for the construction of high-performance conversion-alloying anode for PIBs.

Original languageEnglish
Article number180329
JournalJournal of Alloys and Compounds
Volume1024
DOIs
StatePublished - 20 Apr 2025

Keywords

  • Anode materials
  • Bismuth selenide
  • Conversion-alloying mechanism
  • Electrochemical kinetics
  • Potassium-ion batteries

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