Cheng Mary Hongying, Coalson Rob D
Department of Chemistry, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, USA.
J Phys Chem B. 2005 Jan 13;109(1):488-98. doi: 10.1021/jp047438w.
This paper presents empirical formulas for calculating the dielectric self-energy and ion-ion pair interactions in cylindrical ion channels. The proposed approach can be extended to more complex channel structures, for example, (i) a "straight" channel with variable radius and (ii) a "curved" channel with constant radius. For calibration purposes, we compare results obtained based on the approximate effective potentials developed herein to exact electrostatic calculations obtained via the algorithm of Graf et al.: the agreement is satisfactory. A dynamic lattice Monte Carlo (DLMC) technique is used to further assess the accuracy and efficiency of the proposed empirical potentials. The concentration profiles and current-voltage curves produced with our simple empirical energy formulas are in excellent agreement with numerical results obtained using the algorithm of Graf et al., which calculates all relevant electrostatic forces exactly. The use of effective ion-ion potentials greatly reduces the computer memory required to perform DLMC ion permeation simulations in dielectrically inhomogeneous environments, thus enabling treatment of larger systems than can be handled by numerically exact techniques.
本文提出了用于计算圆柱形离子通道中介电自能和离子-离子对相互作用的经验公式。所提出的方法可以扩展到更复杂的通道结构,例如,(i)半径可变的“直”通道和(ii)半径恒定的“弯曲”通道。为了校准目的,我们将基于本文开发的近似有效势获得的结果与通过Graf等人的算法获得的精确静电计算结果进行比较:结果令人满意。使用动态晶格蒙特卡罗(DLMC)技术进一步评估所提出的经验势的准确性和效率。用我们简单的经验能量公式生成的浓度分布和电流-电压曲线与使用Graf等人的算法获得的数值结果非常吻合,该算法能精确计算所有相关静电力。有效离子-离子势的使用大大减少了在介电不均匀环境中进行DLMC离子渗透模拟所需的计算机内存,从而能够处理比数值精确技术所能处理的更大的系统。