假电容器
超级电容器
电容
密度泛函理论
储能
假电容
电解质
材料科学
电容感应
电容器
电介质
纳米技术
双电层电容器
电极
计算机科学
光电子学
电气工程
化学
物理
功率(物理)
计算化学
热力学
工程类
电压
物理化学
操作系统
作者
Cheng Zhan,Cheng Lian,Yu Zhang,Matthew W. Thompson,Yu Xie,Jianzhong Wu,Paul R. C. Kent,Peter T. Cummings,De‐en Jiang,David J. Wesolowski
标识
DOI:10.1002/advs.201700059
摘要
Supercapacitors such as electric double‐layer capacitors (EDLCs) and pseudocapacitors are becoming increasingly important in the field of electrical energy storage. Theoretical study of energy storage in EDLCs focuses on solving for the electric double‐layer structure in different electrode geometries and electrolyte components, which can be achieved by molecular simulations such as classical molecular dynamics (MD), classical density functional theory (classical DFT), and Monte‐Carlo (MC) methods. In recent years, combining first‐principles and classical simulations to investigate the carbon‐based EDLCs has shed light on the importance of quantum capacitance in graphene‐like 2D systems. More recently, the development of joint density functional theory (JDFT) enables self‐consistent electronic‐structure calculation for an electrode being solvated by an electrolyte. In contrast with the large amount of theoretical and computational effort on EDLCs, theoretical understanding of pseudocapacitance is very limited. In this review, we first introduce popular modeling methods and then focus on several important aspects of EDLCs including nanoconfinement, quantum capacitance, dielectric screening, and novel 2D electrode design; we also briefly touch upon pseudocapactive mechanism in RuO 2 . We summarize and conclude with an outlook for the future of materials simulation and design for capacitive energy storage.
科研通智能强力驱动
Strongly Powered by AbleSci AI