阳极
重量分析
电化学
X射线光电子能谱
电子传输链
拉曼光谱
电极
材料科学
纳米颗粒
化学工程
纳米技术
化学
工程类
物理
光学
有机化学
物理化学
生物化学
作者
Ming Xu,Yu Ma,Rong Liu,Huanhao Xiao,Liming Chen,Ziqiang Zhang,Lei Wang,Guohui Yuan
标识
DOI:10.1016/j.cej.2023.143382
摘要
The electrochemical battery performance is largely determined by electron transport occurring in the electrode materials. The microsphere-structured transition metal selenides (TMSes) with high tap density are prospective anode materials for commercial sodium ion batteries (SIBs), however, they suffer from sluggish electron transport, leading to poor rate and inadequate cycle stability. Herein, a carbon nanotubes (CNTs) intercalation strategy is firstly proposed to enhance the electron transport kinetics in FeSe2 microspheres via a facile method. In the obtained [email protected]2-C composite, the FeSe2 microspheres composed of FeSe2 nanoparticles feature high tap density and short Na+ diffusion distances, while the CNTs networks enable pathways for fast electron transfer in the FeSe2 microspheres. In consequence, the [email protected]2-C delivers high volumetric/gravimetric capacity (885.4 mAh cm−3, 530.2 mAh g−1), an ultra-long lifespan (234.5 mAh g−1 after 10,000 loops at 10 A g−1), and a superior rate performance (57.8% capacity retention at the current density increase of 150 times). Ex-situ XRD, XPS, Raman, TEM and quantitative kinetics analyses are further conducted to reveal the energy storage mechanism underlying the enhanced electrochemical properties of [email protected]2-C. This work demonstrates that the proposed strategy could optimize metal selenides as commercial-value anodes for SIBs.
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