Limaye Aditya, Suvlu Dylan, Willard Adam P
Massachusetts Institute of Technology, Cambridge, Massachusetts, USA.
Faraday Discuss. 2024 Feb 6;249(0):267-288. doi: 10.1039/d3fd00114h.
We present the results of molecular dynamics simulations of a nanoscale electrochemical cell. The simulations include an aqueous electrolyte solution with varying ionic strength (, concentrations ranging from 0-4 M) between a pair of metallic electrodes held at constant potential difference. We analyze these simulations by computing the electrostatic potential profile of the electric double-layer region and find it to be nearly independent of ionic concentration, in stark contrast to the predictions of standard continuum-based theories. We attribute this lack of concentration dependence to the molecular influences of water molecules at the electrode-solution interface. These influences include the molecular manifestation of water's dielectric response, which tends to drown out the comparatively weak screening requirement of the ions. To support our analysis, we decompose water's interfacial response into three primary contributions: molecular layering, intrinsic (zero-field) orientational polarization, and the dipolar dielectric response.
我们展示了一个纳米级电化学电池的分子动力学模拟结果。模拟包括在一对保持恒定电位差的金属电极之间的具有不同离子强度(浓度范围为0 - 4 M)的水性电解质溶液。我们通过计算双电层区域的静电势分布来分析这些模拟,并发现它几乎与离子浓度无关,这与基于标准连续介质理论的预测形成鲜明对比。我们将这种对浓度的不依赖性归因于电极 - 溶液界面处水分子的分子影响。这些影响包括水的介电响应的分子表现,这倾向于掩盖离子相对较弱的屏蔽需求。为了支持我们的分析,我们将水的界面响应分解为三个主要贡献:分子分层、固有(零场)取向极化和偶极介电响应。