化学工程
储能
离子
电化学
电荷(物理)
离子键合
作者
Sheng Bi,Harish Banda,Ming Chen,Liang Niu,Chen Mingyu,Taizheng Wu,Jiasheng Wang,Runxi Wang,Jiamao Feng,Tianyang Chen,Mircea Dinca,Alexei A. Kornyshev,Guang Feng,Sheng Bi,Harish Banda,Ming Chen,Liang Niu,Chen Mingyu,Taizheng Wu,Jiasheng Wang
出处
期刊:Nature Materials
[Springer Nature]
日期:2020-02-03
卷期号:19 (5): 552-558
被引量:566
标识
DOI:10.1038/s41563-019-0598-7
摘要
We present a computational microscopy analysis (targeted molecular dynamics simulations) of the structure and performance of conductive metal organic framework (MOF) electrodes in supercapacitors with room temperature ionic liquids. The molecular modeling predicts the characteristic shapes of the potential dependence of electrode capacitance, relying on the structure of MOF electrodes and particularly how ions transport and reside in MOFs under polarization. Transmission line model was adopted to characterize the charging dynamics process and build up a bridge to evaluate the capacitive performance of practical supercapacitor devices at macroscale from the simulation-obtained data at nanoscale. Such nanoscale-to-macroscale analysis demonstrates the potential of MOF supercapacitors for achieving unprecedentedly high volumetric energy and power densities. The investigation gives molecular insights into the preferred structures of MOF for achieving these results, which could provide a blueprint for future experimental characterization of these new systems.
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