Laboratory of Theoretical Physics, Department of Physics, University of Puerto Rico , Rio Piedras, Puerto Rico 00936-8377.
J Phys Chem B. 2012 Aug 30;116(34):10364-70. doi: 10.1021/jp304362y. Epub 2012 Aug 16.
Theoretical difficulties in describing the structure and thermodynamics of an ionic liquid double layer are often associated with the nonspherical shapes of ionic particles and extremely strong electrostatic interactions. The recent density functional theory predictions for the electrochemical properties of the double layer formed by a model ionic liquid wherein each cation is represented by two touching hard spheres, one positively charged and the other neutral, and each anion by a negatively charged hard spherical particle, remain untested in this strong coupling regime. We report results from a Monte Carlo simulation of this system. Because for an ionic liquid the Bjerrum length is exceedingly large, it is difficult to perform simulations under conditions of strong electrostatic coupling used in the previous density functional theory study. Results are obtained for a somewhat smaller (but still large) Bjerrum length so that reliable simulation data can be generated for a useful test of the corresponding theoretical predictions. On the whole, the density profiles predicted by the theory are quite good in comparison with the simulation data. The strong oscillations of ionic density profiles and the local electrostatic potential predicted by this theory are confirmed by simulation, although for a small electrode charge and strong electrostatic coupling, the theory predicts the contact ionic densities to be noticeably different from the Monte Carlo results. The theoretical results for the more important electrostatic potential profile at contact are given with good accuracy.
描述离子液体双电层的结构和热力学性质时通常会遇到理论上的困难,这主要与离子粒子的非球形形状和极其强烈的静电相互作用有关。最近,人们根据密度泛函理论对由两个相互接触的硬球(一个带正电荷,另一个不带电)表示的模型离子液体的双电层电化学性质进行了预测,但在这种强耦合状态下,这些预测尚未经过实验检验。我们报告了对该系统进行的蒙特卡罗模拟的结果。由于对于离子液体而言,Bjerrum 长度非常大,因此很难在先前密度泛函理论研究中使用的强静电耦合条件下进行模拟。我们得到了一个稍小(但仍然较大)的 Bjerrum 长度的结果,以便为有用的对应理论预测的测试生成可靠的模拟数据。总的来说,与模拟数据相比,理论预测的密度分布相当好。尽管对于小电极电荷和强静电耦合,理论预测的接触离子密度与蒙特卡罗结果明显不同,但该理论预测的离子密度的强烈振荡和局部静电势已通过模拟得到证实。在接触处,给出了更重要的静电势分布的理论结果,具有很好的精度。