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Molecular understanding of charge storage and charging dynamics in supercapacitors with MOF electrodes and ionic liquid electrolytes

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IL-MOFs_manuscript-revised2nd_v8.1.docxAccepted version2.21 MBMicrosoft WordView/Open
IL-MOFs_SI-revised2nd_v8.docxSupporting information9.37 MBMicrosoft WordView/Open
Title: Molecular understanding of charge storage and charging dynamics in supercapacitors with MOF electrodes and ionic liquid electrolytes
Authors: Bi, S
Banda, H
Chen, M
Niu, L
Chen, M
Wu, T
Wang, J
Wang, R
Feng, J
Chen, T
Dincă, M
Kornyshev, AA
Feng, G
Item Type: Journal Article
Abstract: We performed constant-potential molecular dynamics simulations to analyse the double-layer structure and capacitive performance of supercapacitors composed of conductive metal-organic framework (MOF) electrodes and ionic liquids. The molecular modelling clarifies how ions transport and reside inside polarized porous MOFs, and then predicts the corresponding potential-dependent capacitance in characteristic shapes. The transmission line model was adopted to characterize the charging dynamics, which further allowed evaluation of the capacitive performance of this class of supercapacitors at the macroscale from the simulation-obtained data at the nanoscale. These 'computational microscopy' results were supported by macroscopic electrochemical measurements. Such a combined nanoscale-to-macroscale investigation demonstrates the potential of MOF supercapacitors for achieving unprecedentedly high volumetric energy and power densities. It gives molecular insights into preferred structures of MOFs for accomplishing consistent performance with optimal energy-power balance, providing a blueprint for future characterization and design of these new supercapacitor systems.
Issue Date: 1-May-2020
Date of Acceptance: 19-Dec-2019
URI: http://hdl.handle.net/10044/1/76916
DOI: 10.1038/s41563-019-0598-7
ISSN: 1476-1122
Publisher: Nature Research
Start Page: 552
End Page: 558
Journal / Book Title: Nature Materials
Volume: 19
Copyright Statement: © The Author(s), under exclusive licence to Springer Nature Limited 2020
Sponsor/Funder: Engineering & Physical Science Research Council (EPSRC)
Funder's Grant Number: EP/H004319/1
Keywords: Science & Technology
Physical Sciences
Technology
Chemistry, Physical
Materials Science, Multidisciplinary
Physics, Applied
Physics, Condensed Matter
Chemistry
Materials Science
Physics
METAL-ORGANIC FRAMEWORKS
ENERGY-STORAGE
CAPACITANCE
TEMPERATURE
Nanoscience & Nanotechnology
Publication Status: Published
Conference Place: England
Online Publication Date: 2020-02-03
Appears in Collections:Chemistry
Faculty of Natural Sciences