Self-shaping liquid crystal droplets by balancing bulk elasticity and interfacial tension

被引:35
作者
Peddireddy, Karthik [1 ,2 ]
Copar, Simon [3 ]
Le, Khoa, V [4 ]
Musevi, Igor [3 ,5 ]
Bahr, Christian [1 ]
Jampani, Venkata S. R. [1 ,5 ,6 ]
机构
[1] Max Planck Inst Dynam & Self Org, Dynam Complex Fluids, D-37077 Gottingen, Germany
[2] Univ San Diego, Dept Phys & Biophys, San Diego, CA 92110 USA
[3] Univ Ljubljana, Fac Math & Phys, Ljubljana 1000, Slovenia
[4] Tokyo Univ Sci, Fac Sci, Dept Chem, Tokyo 1628601, Japan
[5] Jozef Stefan Inst, Condensed Matter Phys Dept, Ljubljana 1000, Slovenia
[6] Univ Luxembourg, Phys & Mat Res Unit, L-1511 Luxembourg, Luxembourg
基金
欧洲研究理事会;
关键词
anisotropic liquids; liquid crystals; shape transformation; vesicles; interfacial tension; PATTERN-FORMATION; MEMBRANES; INSTABILITIES; FILAMENTS; DYNAMICS; CELLS;
D O I
10.1073/pnas.2011174118
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The shape diversity and controlled reconfigurability of closed surfaces and filamentous structures, universally found in cellular colonies and living tissues, are challenging to reproduce. Here, we demonstrate a method for the self-shaping of liquid crystal (LC) droplets into anisotropic and three-dimensional superstructures, such as LC fibers, LC helices, and differently shaped LC vesicles. The method is based on two surfactants: one dissolved in the LC dispersed phase and the other in the aqueous continuous phase. We use thermal stimuli to tune the bulk LC elasticity and interfacial energy, thereby transforming an emulsion of polydispersed, spherical nematic droplets into numerous, uniform-diameter fibers with multiple branches and vice versa. Furthermore, when the nematic LC is cooled to the smectic-A LC phase, we produce monodispersed microdroplets with a tunable diameter dictated by the cooling rate. Utilizing this temperature-controlled self-shaping of LCs, we demonstrate life-like smectic LC vesicle structures analogous to the biomembranes in living systems. Our experimental findings are supported by a theoretical model of equilibrium interface shapes. The shape transformation is induced by negative interfacial energy, which promotes a spontaneous increase of the interfacial area at a fixed LC volume. The method was successfully applied to many different LC materials and phases, demonstrating a universal mechanism for shape transformation in complex fluids.
引用
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页数:7
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共 53 条
[1]   Nematoid filaments: New mixtures, cluster morphology and comparative microinterferometry [J].
Adamczyk, A .
MOLECULAR CRYSTALS AND LIQUID CRYSTALS SCIENCE AND TECHNOLOGY SECTION A-MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 1995, 261 :271-282
[2]   CHEMOTAXIS IN BACTERIA [J].
ADLER, J .
SCIENCE, 1966, 153 (3737) :708-&
[3]   Surfactant-induced nematic wetting layer at a thermotropic liquid crystal/water interface [J].
Bahr, C .
PHYSICAL REVIEW E, 2006, 73 (03)
[4]   Pearling in cells: A clue to understanding cell shape [J].
Bar-Ziv, R ;
Tlusty, T ;
Moses, E ;
Safran, SA ;
Bershadsky, A .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (18) :10140-10145
[5]   INSTABILITY AND PEARLING STATES PRODUCED IN TUBULAR MEMBRANES BY COMPETITION OF CURVATURE AND TENSION [J].
BARZIV, R ;
MOSES, E .
PHYSICAL REVIEW LETTERS, 1994, 73 (10) :1392-1395
[6]   Nanosecond Electro-Optic Switching of a Liquid Crystal [J].
Borshch, Volodymyr ;
Shiyanovskii, Sergij V. ;
Lavrentovich, Oleg D. .
PHYSICAL REVIEW LETTERS, 2013, 111 (10)
[7]   Artificial Cells: Synthetic Compartments with Life-like Functionality and Adaptivity [J].
Buddingh, Bastiaan C. ;
van Hest, Jan C. M. .
ACCOUNTS OF CHEMICAL RESEARCH, 2017, 50 (04) :769-777
[8]   SPLAY AND BEND ELASTIC-CONSTANTS IN 7CB AND 8CB [J].
CHATTOPADHAYAY, P ;
ROY, SK .
MOLECULAR CRYSTALS AND LIQUID CRYSTALS SCIENCE AND TECHNOLOGY SECTION A-MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 1994, 257 :89-98
[9]   Texture dependence of capillary instabilities in nematic liquid crystalline fibres [J].
Cheong, AG ;
Rey, AD .
LIQUID CRYSTALS, 2004, 31 (09) :1271-1284
[10]  
De Gennes P.-G., 1993, The physics of liquid crystals (No. 83), DOI DOI 10.1063/1.2808028