材料科学
电化学
电极
密度泛函理论
阴极
吸附
水溶液
电流密度
轨道能级差
分子轨道
离子
化学工程
氧化还原
锌
共价键
扩散
碳纤维
导电体
降级(电信)
电荷密度
纳米技术
电导率
兴奋剂
工作(物理)
储能
化学物理
无机化学
电池(电)
作者
Runmei Luo,Qingjun Yang,Lin Sun,Yu Liu,Longhua Li,Yong Lei,Weidong Shi
标识
DOI:10.1002/adma.202516093
摘要
Abstract Vanadium‐based compounds are a reliable and promising cathode material for aqueous zinc ion batteries. However, the rapid insertion/extraction of Zn 2+ at high current densities triggers irreversible structural degradation and slow ion diffusion kinetics, leading to poor cycling stability. Herein, highly conductive Se is doped into a carbon skeleton of V 2 O 3 , realizing the orbital interaction between V 3d and Se 4p orbitals. Density functional theory calculations verify that the strong d‐p orbital hybridization upshifts the d‐band center of V, optimizes the charge distribution, and reduces the Zn 2+ and H + adsorption energies. Furthermore, the robust V─Se covalent network in the Se‐V 2 O 3 @C electrode significantly enhances the electrode's redox activity and conductivity, resulting in high specific capacity and ultra‐long cycle life. Therefore, the Se‐V 2 O 3 @C‐650 electrode exhibits a high capacity of 460.87 mAh g −1 at 0.1 A g −1 . When the current density is 10 A g −1 , the capacity reaches 168.32 mAh g −1 after 10 000 cycles, with a 73.8% capacity retention after 20 000 cycles, which exceeds the reported electrodes. This work presents new insights for constructing high‐performance AZIB cathodes by establishing the mechanism of action between d‐p orbital hybridization and electrochemical performance.
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