双金属片
材料科学
阳极
电化学
锂(药物)
储能
过渡金属
金属有机骨架
电化学储能
钴
化学工程
纳米技术
氧化物
吸附
纳米结构
电极
金属
无机化学
超级电容器
冶金
化学
催化作用
有机化学
热力学
医学
功率(物理)
物理
物理化学
工程类
内分泌学
作者
Yun Guo,Ming Huang,Hua Zhong,XU Zhaohui,Quanyi Ye,Hua Yin,Guozheng Ma,Zhiguang Xu,Akif Zeb,Xiaoming Lin
标识
DOI:10.1016/j.jcis.2023.07.099
摘要
Transition metal oxides (TMOs) have received significant consideration. Because of their enormous theoretical capacity, cheap, and less toxicity. Notably, cobalt-based materials hold promises as negative electrode materials for batteries, but they suffer from less electrical conductivity and significant volume changes during operation. In order to address these challenges, sacrificial templating techniques at the nanoscale offer a potential solution for improving the electrochemical stability and rate performance of these materials. More specifically, these tactics have proven popular for designing Li-ion storages. To ascertain the impact of multiple metal ions on the electrochemical capacity, metal organic frameworks (MOFs) derived MCo2O4-MOF (M = Zn, Ni, Cu) were developed. Among these, ZnCo2O4 showed the best electrochemical performance (927.2 mAh g-1 at 0.1 A g-1 after 250 cycles). Furthermore, calculations based on density functional theory (DFT) revealed that ZnCo2O4 had the lowest Li+ adsorption energy, with a minimum value of -1.61 eV. Moreover, this research aims to design controllable nanostructures in order to enhance the design of transition bimetallic oxide composites for energy storage applications.
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