Flexoelectric fluid membrane vesicles in spherical confinement

被引:2
|
作者
Abtahi, Niloufar [1 ]
Bouzar, Lila [2 ]
Saidi-Amroun, Nadia [2 ]
Muller, Martin Michael [3 ]
机构
[1] Eastern Mediterranean Univ Famagusta, Fac Arts & Sci, Dept Phys, Via Mersin 10, Famagusta, North Cyprus, Turkey
[2] Univ Sci & Technol Houari Boumed, Lab Phys Mat, BP 32 El Alia Bab Ezzouar, Algiers 16111, Algeria
[3] Univ Lorraine, UMR 7019, Lab Phys & Chim Theor, 1 Blvd Arago, F-57070 Metz, France
关键词
87; 16; D-; 10; Pq; 77; 55; -g; GIANT VESICLES; CURVATURE; DYNAMICS; TENSION; SHAPE;
D O I
10.1209/0295-5075/131/18001
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The morphology of spherically confined flexoelectric fluid membrane vesicles in an external uniform electric field is studied numerically. Due to the deformations induced by the confinement, the membrane becomes polarized resulting in an interaction with the external field. The equilibrium shapes of the vesicle without electric field can be classified in a geometrical phase diagram as a function of scaled area and reduced volume (Kahraman O. et al., EPL, 97 (2012) 68008; Kahraman O. et al., New. J. Phys., 14 (2012) 095021). When the area of the membrane is only slightly larger than the area of the confining sphere, a single axisymmetric invagination appears. A non-vanishing electric field induces an additional elongation of the confined vesicle which is either perpendicular or parallel depending on the sign of the electric field parameter. Higher values of the surface area or the electric field parameter can reduce the symmetry of the system leading to more complex folding. We present the resulting shapes and show that transition lines are shifted in the presence of an electric field. The obtained folding patterns could be of interest for biophysical and technological applications alike.
引用
收藏
页数:7
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