Vesicle dynamics in uniform electric fields: squaring and breathing
We computationally investigate the dynamics of a vesicle exposed to uniform DC or AC electric fields. We employ the two-dimensional boundary integral method in order to simulate vesicle deformation under experimental conditions where peculiar drum-like ("squared") shapes have been observed...
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Veröffentlicht in: | Soft matter 2015-06, Vol.11 (24), p.484-4846 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | We computationally investigate the dynamics of a vesicle exposed to uniform DC or AC electric fields. We employ the two-dimensional boundary integral method in order to simulate vesicle deformation under experimental conditions where peculiar drum-like ("squared") shapes have been observed. The vesicle membrane is modeled as an infinitely thin, capacitive, area-incompressible interface, with the surrounding fluids acting as leaky dielectrics. Our simulations capture the "squaring" phenomenon, in which vesicles deform into rectangular profiles with corner-like regions of high curvature, as vesicles undergo dynamic transitions between oblate and prolate ellipsoidal shapes.
We computationally investigate the dynamics of a vesicle exposed to uniform DC or AC electric fields. Our simulations capture the "squaring" phenomenon, in which vesicles deform into rectangular profiles with corner-like regions of high curvature, as vesicles undergo dynamic transitions between oblate and prolate ellipsoidal shapes. In AC field, this occurs periodically resembling "breathing". |
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ISSN: | 1744-683X 1744-6848 |
DOI: | 10.1039/c5sm00585j |