材料科学
阳极
锂(药物)
卟啉
密度泛函理论
纳米技术
纳米材料
离子
多金属氧酸盐
溶解度
氧化还原
化学工程
光化学
催化作用
有机化学
物理化学
计算化学
电极
化学
内分泌学
冶金
工程类
医学
作者
Yanchun Liu,Xianggang Zhou,Tianyu Qiu,Ruiqi Yao,Feiyang Yu,Tingting Song,Xingyou Lang,Qing Jiang,Huaqiao Tan,Yingqi Li,Yangguang Li
标识
DOI:10.1002/adma.202407705
摘要
Abstract Polyoxometalates (POMs) have been considered one of the most promising anode candidates for lithium‐ion batteries (LIBs) in virtue of their high theoretical capacity and reversible multielectron redox properties. However, the poor intrinsic electronic conductivity, low specific surface area, and high solubility in organic electrolytes hinder their widespread applications in LIBs. Herein, a novel hybrid nanomaterial is synthesized by co‐assembling POMs and porphyrins (PMo 12 /CoTPyP) through a facile solvothermal method. The POM clusters are stabilized by porphyrin units through electrostatic interactions, which simultaneously realize the uniform dispersion of POMs and porphyrin units. Benefiting from the generated sub‐1 nm channels for fast ion transport and the synergistic effect between evenly distributed PMo 12 clusters and high‐conductive CoTPyP units, the LIB based on the optimized PMo 12 /CoTPyP anode exhibits significantly improved Li + storage capability as well as superior rate and cycling performance. The results of density functional theory simulations further reveal that the co‐assembly of PMo 12 and CoTPyP can accelerate the mobility of Li + and electrons, which in turn promotes the enhancement of LIBs performance. This work paves a strategy for synthesizing POMs–based anode materials with simultaneously high dispersibility, redox activity, and stability.
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