Le Jia-Bo, Fan Qi-Yuan, Li Jie-Qiong, Cheng Jun
State Key Laboratory of Physical Chemistry of Solid Surfaces, iChEM, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.
Sci Adv. 2020 Oct 7;6(41). doi: 10.1126/sciadv.abb1219. Print 2020 Oct.
Electrified solid/liquid interfaces are the key to many physicochemical processes in a myriad of areas including electrochemistry and colloid science. With tremendous efforts devoted to this topic, it is unexpected that molecular-level understanding of electric double layers is still lacking. Particularly, it is perplexing why compact Helmholtz layers often show bell-shaped differential capacitances on metal electrodes, as this would suggest a negative capacitance in some layer of interface water. Here, we report state-of-the-art ab initio molecular dynamics simulations of electrified Pt(111)/water interfaces, aiming at unraveling the structure and capacitive behavior of interface water. Our calculation reproduces the bell-shaped differential Helmholtz capacitance and shows that the interface water follows the Frumkin adsorption isotherm when varying the electrode potential, leading to a peculiar negative capacitive response. Our work provides valuable insight into the structure and capacitance of interface water, which can help understand important processes in electrocatalysis and energy storage in supercapacitors.
带电的固/液界面是包括电化学和胶体科学在内的众多领域中许多物理化学过程的关键。尽管在这个主题上投入了巨大努力,但令人意外的是,对双电层的分子水平理解仍然不足。特别是,令人困惑的是为什么紧密亥姆霍兹层在金属电极上常常呈现钟形微分电容,因为这意味着在界面水的某些层中存在负电容。在此,我们报告了带电的Pt(111)/水界面的最新从头算分子动力学模拟,旨在揭示界面水的结构和电容行为。我们的计算重现了钟形微分亥姆霍兹电容,并表明当改变电极电位时,界面水遵循弗鲁姆金吸附等温线,从而导致奇特的负电容响应。我们的工作为界面水的结构和电容提供了有价值的见解,这有助于理解电催化和超级电容器中能量存储的重要过程。