均匀直流电场驱动下波动仿生膜的不稳定性。

ArXiv Pub Date : 2025-02-18
Zongxin Yu, Shuozhen Zhao, Michael J Miksis, Petia M Vlahovska
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引用次数: 0

摘要

考虑到在膜附近形成的德拜层的动力学,本文在电动力学框架下研究了垂直于界面施加直流电场下脂质膜的线性稳定性。德拜层中的扰动电荷通过膜内外的电表面应力重新分布并破坏膜的稳定。由于膜附近的基态电场减弱,当膜分离的溶液的电解质浓度差增加时,不稳定性被抑制。这一结果与在不对称电导率情况下使用漏电介质模型预测的不稳定效应形成对比。我们将这种差异归因于关于相对于德拜长度的扰动幅度的不同假设,这导致这两个框架内线性稳定性分析的有效性不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Instability of a fluctuating biomimetic membrane driven by an applied uniform DC electric field.

The linear stability of a lipid membrane under a DC electric field, applied perpendicularly to the interface, is investigated in the electrokinetic framework, taking account to the dynamics of the Debye layers formed near the membrane. The perturbed charge in the Debye layer redistributes and destabilizes the membrane via electrical surface stress interior and exterior to the membrane. The instability is suppressed as the difference in the electrolyte concentration of the solutions separated by the membrane increases, due to a weakened base state electric field near the membrane. This result contrasts with the destabilizing effect predicted using the leaky dielectric model in cases of asymmetric conductivity. We attribute this difference to the varying assumptions about the perturbation amplitude relative to the Debye length, which result in different regimes of validity for the linear stability analysis within these two frameworks.

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