Reference : Lipid islands on liquid crystal shells
Scientific journals : Article
Physical, chemical, mathematical & earth Sciences : Physics
Physics and Materials Science
http://hdl.handle.net/10993/54455
Lipid islands on liquid crystal shells
English
Sharma, Anjali mailto [University of Luxembourg > Faculty of Science, Technology and Medicine (FSTM) > Department of Physics and Materials Science (DPHYMS) >]
Gupta, Deepak mailto [Dipartimento di Fisica ‘G. Galilei’, INFN, Universitá di Padova, Via Marzolo 8, 35131 Padova, Italy]
Scalia, Giusy mailto [University of Luxembourg > Faculty of Science, Technology and Medicine (FSTM) > Department of Physics and Materials Science (DPHYMS) >]
Lagerwall, Jan mailto [University of Luxembourg > Faculty of Science, Technology and Medicine (FSTM) > Department of Physics and Materials Science (DPHYMS) >]
18-Feb-2022
Physical Review Research
American Physical Society (APS)
4
013130
Yes
International
2643-1564
College Park
United States - Maryland
[en] liquid crystals ; lipids ; multiple emulsions ; topological constraints ; phase separation ; elastic deformation
[en] By inducing phase separation in lipid monolayers on liquid crystal (LC) shells—thin hollow spheres of LC with water inside and outside—we reveal a rich set of coupled two- and three-dimensional (2D and 3D) self- organization phenomena enabled by the dual closely spaced internal and external spherical LC-water interfaces. Spindle-shaped 2D islands of condensed lipid monolayer first form at the primary interface where lipids are deposited, later also at the initially unexposed secondary interface, because lipids transfer through the LC. The LCs’ elastic response to the 3D deformation caused by islands moves them from thin to thick regions on the shell and creates an attraction between opposite-side islands, topologically separated by the LCs, until they stack in a sandwich-like manner. We propose that the phase separation may be used for studying liposome adsorption on soft hydrophobic substrates, and to create unconventional colloidal particles with programmed interactions.
European Commission - EC ; Fonds National de la Recherche - FnR
Researchers ; Professionals ; Students
http://hdl.handle.net/10993/54455
10.1103/PhysRevResearch.4.013130
H2020 ; 648763 - INTERACT - Intelligent Non-woven Textiles and Elastomeric Responsive materials by Advancing liquid Crystal Technology
FnR ; FNR10935404 > Emmanuel Defay > MASSENA > Materials For Sensing And Energy Harvesting > 01/10/2016 > 31/03/2023 > 2015

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