论文标题

电解质溶液中电荷调节的金属纳米颗粒之间的相互作用

Interaction between charge-regulated metal nanoparticles in an electrolyte solution

论文作者

Bakhshandeh, Amin, Santos, Alexandre P. dos, Levin, Yan

论文摘要

我们提出了一种理论,该理论使我们能够计算酸 - 电解质溶液中电荷调节的金属纳米颗粒之间的相互作用势。该方法基于最近引入的电荷调节模型,该模型允许我们在特定的显微镜模型中明确地将弱酸的散装缔合常数与相同弱酸吸附位点的表面缔合常数联系起来。在考虑金属纳米颗粒时,我们明确说明了导电芯中诱导的表面电荷的影响。为了探索近似值的准确性,我们比较了隔离电荷调节的金属纳米颗粒的离子密度曲线和同一模型的显式蒙特卡洛模拟。一旦建立了理论方法的准确性,我们就通过数值求解具有电荷调节边界条件的泊松玻璃到托架螺栓曼的方程来计算两个电荷调节金属纳米颗粒之间的相互作用力。然后,通过整合电湿应力张量来计算力。我们发现,对于金属纳米颗粒,电荷调节边界条件可以通过恒定的表面电荷边界条件很好地近似,最近引入了非常准确的Derjaguin样近似值。另一方面,恒定的表面电势边界条件通常在胶体文献中使用,显示出与电荷不对称的颗粒的电荷调节边界条件的显着偏差。

We present a theory which allows us to calculate the interaction potential between charge-regulated metal nanoparticles inside an acid-electrolyte solution. The approach is based on the recently introduced model of charge regulation which permits us to explicitly -- within a specific microscopic model -- relate the bulk association constant of a weak acid to the surface association constant for the same weak acid adsorption sites. When considering metal nanoparticles we explicitly account for the effect of the induced surface charge in the conducting core. To explore the accuracy of the approximations, we compare the ionic density profiles of an isolated charge-regulated metal nanoparticle with explicit Monte Carlo simulations of the same model. Once the accuracy of the theoretical approach is established, we proceed to calculate the interaction force between two charge-regulated metal nanoparticles by numerically solving the Poisson-Boltzmann equation with charge regulation boundary condition. The force is then calculated by integrating the electroosmotic stress tensor. We find that for metal nanoparticles the charge regulation boundary condition can be well approximated by the constant surface charge boundary condition, for which a very accurate Derjaguin-like approximation was recently introduced. On the other hand, a constant surface potential boundary condition often used in colloidal literature, shows a significant deviation from the charge regulation boundary condition for particles with large charge asymmetry.

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