4.5 Article

Three-Dimensional Hierarchical Ternary Nanostructures Bismuth/Polypyrrole/CNTs for High Performance Potassium-Ion Battery Anodes

期刊

CHINESE JOURNAL OF CHEMISTRY
卷 40, 期 13, 页码 1585-1591

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/cjoc.202200042

关键词

Bismuth; Nanostructures; Conducting materials; Potassium ion battery; Energy storage

资金

  1. National Natural Science Foundation of China (NSFC) [51772073, 51762013]
  2. Key Project of Hebei Natural Science Foundation [E2020201030]
  3. Beijing-Tianjin-Hebei Collaborative Innovation Community Construction Project [21344301D]
  4. Second Batch of Young Talent of Hebei Province [70280016160250, 70280011808]
  5. Key Fund in Hebei Province Department of Education China [ZD2021014]
  6. Central Government Guide Local Funding Projects for Scientific and Technological Development [216Z4404G]
  7. Graduate Innovation Fund Project of Hebei University [HBU2021ss071]

向作者/读者索取更多资源

A novel 3D ternary bismuth nanoparticles/conductive polymers/carbon nanotubes (Bi/PPy/CNT) hybrid anode material was reported with excellent reversible capacity and performance for K-ion batteries. The hydrogel network and carbon nanotubes were utilized to reduce volume expansion of bismuth particles, laying the foundation for expanding the application of 3D ternary materials.
Comprehensive Summary In recent years, the anode materials of bismuth(Bi)-based potassium ion batteries with high theoretical capacity and suitable potassium ion insertion potential have attracted extensive attention. However, due to the volume expansion of Bi, the performance of Bi-based anode materials is not ideal during potassium ion (de)intercalation. In order to solve these problems, we report a three-dimensional (3D) ternary bismuth nanoparticles/conductive polymers/carbon nanotubes (Bi/PPy/CNT) hybrid anode material for K-ion batteries. At a current density of 100 mA center dot g(-1), its reversible capacity reaches 302 mAh center dot g(-1) after 200 cycles, while it reaches 195.7 mAh center dot g(-1) after 600 cycles at 1 A center dot g(-1). Its excellent performance is attributed to the hydrogel network which provides a range of electron transport networks and high porosity. Carbon nanotubes are used as electron enhancers to reduce the volume expansion of Bi particles during the reaction. This study provides a prerequisite for expanding the application of 3D ternary materials.

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