首页> 外文期刊>The European physical journal, E. Soft matter >Modeling the camel-to-bell shape transition of the differential capacitance using mean-field theory and Monte Carlo simulations
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Modeling the camel-to-bell shape transition of the differential capacitance using mean-field theory and Monte Carlo simulations

机译:使用平均场理论和蒙特卡罗模拟模拟差分电容的骆驼到钟形状转换

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Mean-field electrostatics is used to calculate the differential capacitance of an electric double layer formed at a planar electrode in a symmetric 1:1 electrolyte. Assuming the electrolyte is also ion-size symmetric, we derive analytic expressions for the differential capacitance valid up to fourth order in the surface charge density or surface potential. Our mean-field model accounts exclusively for electrostatic interactions but includes an arbitrary non-ideality in the mixing entropy of the mobile ions. The ensuing criterion for the camel-to-bell shape transition of the differential capacitance is analyzed using commonly used mixing models (one based on a lattice gas and the other based on the Carnahan-Starling equation of state) and compared with Monte Carlo simulations. We observe a reasonable agreement between all our mean-field models and the simulation data for the camel-to-bell shape transition. The absolute value of the differential capacitance for an uncharged (or weakly charged) electrode is, however, not reproduced by our mean-field approaches, not even upon introducing a Stern layer with a thickness equal of the ion radius. We show that, if a Stern layer is introduced, its thickness dependence on the ion size is non-monotonic or, depending on the salt concentration, even inversely proportional.
机译:平均场静电装置用于计算在对称的1:1电解质中形成的平面电极处的电双层的差分电容。假设电解质也是离子尺寸对称的,我们导出用于在表面电荷密度或表面电位的差分电容上有效的差分电容的分析表达式。我们的平均场模型账户专门用于静电相互作用,但包括移动离子的混合熵中的任意非理想性。通过常用的混合模型(基于晶格气和其他状态的卡纳纳希哈椋鸟方程,使用常用的混合模型来分析差分电容的骆驼到钟形状转换的随后标准。我们在所有平均场模型和驼背形状转换的模拟数据之间遵守合理的协议。然而,对于不带电(或弱电荷)电极的差分电容的绝对值是由我们的平均场方法再现,即使在引入粗糙层的陡峭层时,也不是由离子半径的厚度。我们表明,如果引入船尾层,则其对离子尺寸的厚度依赖性是非单调的,或者取决于盐浓度,甚至是成反比的。

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