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    Instability of a fluctuating biomimetic membrane driven by an applied uniform dc electric field

    Zongxin Yu*, Shuozhen Zhao, Michael J. Miksis, and Petia M. Vlahovska†

    • *Present address: Department of Mathematics, University of California San Diego, La Jolla, California 92093, USA.
    • †Contact author: petia.vlahovska@northwestern.edu

    Phys. Rev. E 112, 054408 – Published 13 November, 2025

    DOI: https://doi.org/10.1103/91m7-tq8k

    Abstract

    The linear stability of a lipid membrane under a dc electric field, applied perpendicularly to the interface, is investigated in the electrokinetic framework, taking into account the dynamics of the Debye layers formed near the membrane. The perturbed charge in the Debye layers redistributes and generates destabilizing Maxwell stress on the membrane, which outweighs the stabilizing contribution from the electrical body force, leading to a net destabilizing effect. 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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