介观物理学
材料科学
电化学
化学物理
极化(电化学)
电解质
电极
纳米技术
微电子
多尺度建模
量子
电化学电池
电容
密度泛函理论
原子单位
饱和(图论)
电子转移
电化学储能
电化学能量转换
电子
电极电位
标准电极电位
联轴节(管道)
介电谱
电介质
氧化还原
电化学电位
交换电流密度
作者
Peibin Kang,Jun Cheng,Lingyi Meng
标识
DOI:10.1021/acs.jctc.5c01790
摘要
Understanding electrochemical interfacial processes remains a fundamental challenge due to the multiscale spatiotemporal coupling (mass transport, momentum transport, electrochemical reaction, etc.) between the electrochemical double layer and bulk phases. By combining classical density functional theory and atomic structural information from first-principles calculations, we developed an electrochemical model that bridges atomic-scale interfacial phenomena with macroscopic electrochemical behavior at metal-aqueous solution interfaces under experimental conditions. Our model takes into account the critical interfacial effects, including microscopic double-layer effects, mesoscopic mass transfer, and macroscopic fluid flow. At the microscopic level, key interfacial effects include the quantum effects (metal's electron spillover, adsorption-induced effects of water molecules/ions), solution effects (excluded volume effect and dielectric saturation effect), and redox reactions. In particular, quantum effects are crucial for metal-aqueous solution interfaces. Our model successfully reproduces the experimental differential capacitance curves for the Ag electrode in dilute electrolytes, quantifying the contribution of these effects. Moreover, the study of the hydrogen evolution reaction in dilute electrolytes demonstrates an analytical capability for electrochemical polarization curves across varying experimental conditions. This computationally efficient model enables multiscale interface simulations under experimental conditions, which were previously inaccessible to either atomistic simulations or traditional continuum models. Thus, it provides an improved approach for investigating physicochemical processes in electrochemical systems for energy storage and microelectronics applications.
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