Electrode material–ionic liquid coupling for electrochemical energy storage

被引:0
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作者
Xuehang Wang
Maryam Salari
De-en Jiang
Jennifer Chapman Varela
Babak Anasori
David J. Wesolowski
Sheng Dai
Mark W. Grinstaff
Yury Gogotsi
机构
[1] Drexel University,A.J. Drexel Nanomaterials Institute and Department of Materials Science and Engineering
[2] Boston University,Departments of Biomedical Engineering and Chemistry
[3] University of California,Department of Chemistry
[4] Chemical Sciences Division,undefined
[5] Oak Ridge National Laboratory,undefined
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摘要
The development of new electrolyte and electrode designs and compositions has led to advances in electrochemical energy-storage (EES) devices over the past decade. However, focusing on either the electrode or electrolyte separately is insufficient for developing safer and more efficient EES devices in various working environments, as the energy-storage ability is determined by the ion arrangement and charge and/or electron transfer at the electrode–electrolyte interface. In this Review, we assess the fundamental physicochemical and electrochemical properties at the electrode–electrolyte interfaces in Li-ion batteries and supercapacitors using safe and electrochemically stable ionic-liquid electrolytes. Key reactions and interactions at the electrode–electrolyte interface, as well as geometric constraints and temperature effects, are highlighted. Building on the fundamental understanding of interfacial processes, we suggest potential strategies for designing stable and efficient ionic-liquid-based EES devices with emerging electrode materials.
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页码:787 / 808
页数:21
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