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Molecular dynamics simulations of the electric double layer capacitance of graphene electrodes in mono-valent aqueous electrolytes
by
Gengping Jiang Chi Cheng Dan Li Jefferson Zhe Liu
in
Aqueous electrolytes
/ Atomic/Molecular Structure and Spectra
/ Biomedicine
/ Biotechnology
/ Capacitance
/ Charging
/ Chemistry and Materials Science
/ Condensed Matter Physics
/ Dehydration
/ Dielectric constant
/ Double layer
/ Electric double layer
/ Electric potential
/ Electric power distribution
/ Electrodes
/ Electrolytes
/ Energy storage
/ Graphene
/ Materials Science
/ Molecular dynamics
/ Molecular structure
/ Nanotechnology
/ Porous materials
/ Renewable energy
/ Research Article
/ Rubidium
/ Simulation
/ Solvents
/ Voltage drop
/ 分子动力学模拟
/ 双层结构
/ 双电层电容
/ 多孔碳材料
/ 溶剂分子
/ 电极表面
/ 电解质
/ 石墨
2016
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Molecular dynamics simulations of the electric double layer capacitance of graphene electrodes in mono-valent aqueous electrolytes
by
Gengping Jiang Chi Cheng Dan Li Jefferson Zhe Liu
in
Aqueous electrolytes
/ Atomic/Molecular Structure and Spectra
/ Biomedicine
/ Biotechnology
/ Capacitance
/ Charging
/ Chemistry and Materials Science
/ Condensed Matter Physics
/ Dehydration
/ Dielectric constant
/ Double layer
/ Electric double layer
/ Electric potential
/ Electric power distribution
/ Electrodes
/ Electrolytes
/ Energy storage
/ Graphene
/ Materials Science
/ Molecular dynamics
/ Molecular structure
/ Nanotechnology
/ Porous materials
/ Renewable energy
/ Research Article
/ Rubidium
/ Simulation
/ Solvents
/ Voltage drop
/ 分子动力学模拟
/ 双层结构
/ 双电层电容
/ 多孔碳材料
/ 溶剂分子
/ 电极表面
/ 电解质
/ 石墨
2016
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Molecular dynamics simulations of the electric double layer capacitance of graphene electrodes in mono-valent aqueous electrolytes
by
Gengping Jiang Chi Cheng Dan Li Jefferson Zhe Liu
in
Aqueous electrolytes
/ Atomic/Molecular Structure and Spectra
/ Biomedicine
/ Biotechnology
/ Capacitance
/ Charging
/ Chemistry and Materials Science
/ Condensed Matter Physics
/ Dehydration
/ Dielectric constant
/ Double layer
/ Electric double layer
/ Electric potential
/ Electric power distribution
/ Electrodes
/ Electrolytes
/ Energy storage
/ Graphene
/ Materials Science
/ Molecular dynamics
/ Molecular structure
/ Nanotechnology
/ Porous materials
/ Renewable energy
/ Research Article
/ Rubidium
/ Simulation
/ Solvents
/ Voltage drop
/ 分子动力学模拟
/ 双层结构
/ 双电层电容
/ 多孔碳材料
/ 溶剂分子
/ 电极表面
/ 电解质
/ 石墨
2016
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Molecular dynamics simulations of the electric double layer capacitance of graphene electrodes in mono-valent aqueous electrolytes
Journal Article
Molecular dynamics simulations of the electric double layer capacitance of graphene electrodes in mono-valent aqueous electrolytes
2016
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Overview
Electrical double layer (EDL) capacitors based on recently emergent graphene materials have shown several folds performance improvement compared to conventional porous carbon materials, driving a wave of technology breakthrough in portable and renewable energy storage. Accordingly, much interest has been generated to pursue a comprehensive understanding of the fundamental yet elusive double layer structure at file electrode~electrolyte interface. In this paper, we carried out comprehensive molecular dynamics simulations to obtain a com- prehensive picture of how ion type, solvent properties, and charging conditions affect the EDL structure at the graphene electrode surface, and thereby its contribution to capacitance. We show that different symmetrical monovalent aqueous electrolytes M~X- (M~ = Na~, K~, Rb+, and Cs+; X- = F-, CI-, and I ) indeed have distinctive EDL structures. Larger ions, such as, Rb*, Cs*, C1, and I, undergo partial dehydration and penetrate through the first water layer next to the graphene electrode surfaces under charging. As such, the electrical potential distribution through the EDL strongly depends on the ion type. Interestingly, we further reveal that the water can play a critical role in determining the capacitance value. The change of dielectric constant of water in different electrolytes largely cancels out the variance in electric potential drop across the EDL of different ion type. Our simulation sheds new lights on how the interplay between solvent molecules and EDL structure cooperatively contributes to capacitance, which agrees with our experimental results well.
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