Institute of General Electrical Engineering, University of Rostock, Albert-Einstein-Straße 2, 18051, Rostock, Germany.
Cell Mol Biol Lett. 2011 Dec;16(4):576-94. doi: 10.2478/s11658-011-0024-x. Epub 2011 Aug 16.
The interaction between a charged metal implant surface and a surrounding body fluid (electrolyte solution) leads to ion redistribution and thus to formation of an electrical double layer (EDL). The physical properties of the EDL contribute essentially to the formation of the complex implant-biosystem interface. Study of the EDL began in 1879 by Hermann von Helmholtz and still today remains a scientific challenge. The present mini review is focused on introducing the generalized Stern theory of an EDL, which takes into account the orientational ordering of water molecules. To ascertain the plausibility of the generalized Stern models described, we follow the classical model of Stern and introduce two Langevin models for spatial variation of the relative permittivity for point-like and finite sized ions. We attempt to uncover the subtle interplay between water ordering and finite sized ions and their impact on the electric potential near the charged implant surface. Two complementary effects appear to account for the spatial dependency of the relative permittivity near the charged implant surface - the dipole moment vectors of water molecules are predominantly oriented towards the surface and water molecules are depleted due to the accumulation of counterions. At the end the expressions for relative permittivity in both Langevin models were generalized by also taking into account the cavity and reaction field.
带电荷的金属植入物表面与周围体液(电解质溶液)之间的相互作用导致离子重新分布,从而形成双电层(EDL)。EDL 的物理性质对复杂植入物-生物系统界面的形成起着重要作用。EDL 的研究始于 1879 年赫尔曼·冯·亥姆霍兹(Hermann von Helmholtz),至今仍是一个科学挑战。本迷你综述的重点是引入 EDL 的广义 Stern 理论,该理论考虑了水分子的定向有序性。为了确定所描述的广义 Stern 模型的合理性,我们遵循 Stern 的经典模型,并为点离子和有限尺寸离子的相对介电常数的空间变化引入了两个 Langevin 模型。我们试图揭示水分子的有序性和有限尺寸离子之间的微妙相互作用及其对带电荷植入物表面附近电势的影响。似乎有两个互补的效应可以解释带电荷植入物表面附近相对介电常数的空间依赖性——水分子的偶极矩矢量主要朝向表面,并且由于反离子的积累,水分子被耗尽。最后,通过还考虑空腔和反应场,将两个 Langevin 模型中的相对介电常数表达式进行了推广。