Pillaring Electronic Nano‐Wires to Slice T‐Nb2O5 Laminated Particles for Durable Lithium‐Ion Batteries

Author:

Zheng Yongjian123,Chen Keyi13,Wang Lei4,Chen Shuangqiang45,Li Chilin123ORCID

Affiliation:

1. State Key Laboratory of High Performance Ceramics and Superfine Microstructure Shanghai Institute of Ceramics Chinese Academy of Sciences 585 He Shuo Road Shanghai 201899 China

2. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

3. CAS Key Laboratory of Materials for Energy Conversion Shanghai Institute of Ceramics Chinese Academy of Sciences Shanghai 201899 China

4. Department of Chemical Engineering School of Environmental and Chemical Engineering Shanghai University Shangda Road 99 Shanghai 200444 China

5. Institute for Carbon Neutralization College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 China

Abstract

AbstractT‐Nb2O5 characterized by the pronounced intercalation pseudocapacitance effect, is regarded as a promising and alternative anode for fast‐charging Li‐ion batteries. However, its electrochemical kinetics are still hindered by the absence of sufficient and homogenous conductive wiring inside active microparticles. Herein, an in situ pillaring strategy of electronic nano‐wires is proposed to slice T‐Nb2O5 laminated particles for the development of durable and fast‐charging anodes for Li‐ion batteries. A micro‐level layered structure consisting of nano‐carbon‐inserted T‐Nb2O5 composite flakes is designed and enabled by successive ion exchange, slice exfoliation, in situ polymerization, and carbonization processes. The pillared carbon interlayer (derived from polyaniline) can serve as in‐built conductive wires to promote and homogenize electron transfer inside the micro‐level particles. The porous structure (formed by the self‐assembly of exfoliated flakes) contributes to the improved electrolyte immersion and enhanced lithium migration. Benefitting from the kinetically favorable effects, the modified T‐Nb2O5 anode achieves the high‐rate capability (108.4 mAh g−1 at 10 A g−1) and ultralong cycling durability (138 mAh g−1 at 1.0 A g−1 after 8000 cycles, with an average capacity decaying rate as small as 0.043‰). This work provides an effective strategy of electron wire pillaring with the slicing effect for laminated electrode materials with high tap density.

Funder

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Program of Shanghai Academic Research Leader

Publisher

Wiley

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