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Bridging the gap between macroscopic electrochemical measurements and microscopic molecular dynamic simulations: Porous carbon supercapacitor with ionic liquids

机译:桥接宏观电化学测量与微观分子动态模拟之间的差距:具有离子液体的多孔碳超级电容器

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摘要

We apply a combination of experimental measurements and molecular dynamic (MD) simulations to describe imidazolium ionic liquids with porous carbon electrode. On the experiment's side, electrochemical measurements are conducted on two types of porous carbon electrodes prepared from different pore size distributions. The general trend of variations for impedance are identified at various temperatures and electrode geometries in Nyquist plots. On the simulation's side, fundamental geometries including slit and cylindrical pores are modeled to determine the ions' behaviours during charging and discharging process. By examining the local charges variations, the electrode charging or polarization are correlated with ion dynamics or relaxation, particularly in the vicinity of electrode. In one-to-one correspondence to experiments, linear segment of impedance for individual pores gives rise to the constant phase element in fitting of porous electrode's equivalent circuit. Our MD simulations explored the path of implementing the techniques of cyclic voltammetry and electrochemical impedance spectroscopy.
机译:我们应用实验测量和分子动态(MD)模拟的组合,以描述具有多孔碳电极的咪唑鎓离子液体。在实验侧,电化学测量在由不同孔径分布中制备的两种多孔碳电极上进行。在奈奎斯特图中的各种温度和电极几何形状中识别阻抗变化的一般趋势。在模拟的侧面上,模拟包括狭缝和圆柱孔的基本几何形状以确定充电和放电过程中的离子的行为。通过检查本地电荷变化,电极充电或极化与离子动力学或弛豫相关,特别是在电极附近。在与实验一对一的对应关系中,单个孔的阻抗的线性段导致多孔电极的等效电路的恒定相位元件。我们的MD仿真探索了实施循环伏安法和电化学阻抗光谱技术的路径。

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