When dispersed in thermotropic nematic liquid crystal oils, surfactant-ladden aqueous droplets often lead to the formation of a equatorial ring disclination in the nearby nematic matrix as a result of a balance between elasticity and interfacial energy. In this experimental work, the aqueous phase contains an extract of cytoskeletal proteins that self-assemble into an active quasi-two-dimensional shell featuring self-sustained periodic flows. The ensuing hydrodynamic coupling drives the surrounding liquid crystal and triggers oscillations in the disclinations. We describe the dynamic modes of the disclinations under different driving conditions, and explore their pathway to collapse under flow conditions
peer reviewedBy photopolymerizing liquid crystal shells, their rich variety of self-assembled struct...
This article may be downloaded for personal use only. Any other use requires prior permission of the...
From the mitotic spindle up to tissues and biofilms, many biological systems behave as active drople...
Liquid crystals are elongated molecules with a rich and surprising phase behavior. Nonequilibrium co...
The authors would like to acknowledge many valuable discussions with Mark Bowick, Daniel L. Barton, ...
Spherical confinement of nematic liquid crystals leads to the formation of equilibrium director fiel...
Recent experimental observations have demonstrated that topological defects can facilitate the devel...
The formation of emulsions from multiple immiscible fluids is governed by classical concepts such as...
We study the interplay between flow, structure, and topology in liquid crystals, in both passive and...
Living cells sense the mechanical features of their environment and adapt to it by actively remodeli...
Liquid shells (e.g., double emulsions, vesicles, etc.) are susceptible to interfacial instability an...
In this thesis, a new way of simulating a two-way coupling between a liquid crystal and an immersed ...
This thesis presents analytical and numerical studies of the nonequilibrium dynamics of active nemat...
This dissertation describes experiments which explore assembly and self-shaping behavior of liquid c...
Active liquid crystals are a new class of soft materials that have recently raised a huge interest. ...
peer reviewedBy photopolymerizing liquid crystal shells, their rich variety of self-assembled struct...
This article may be downloaded for personal use only. Any other use requires prior permission of the...
From the mitotic spindle up to tissues and biofilms, many biological systems behave as active drople...
Liquid crystals are elongated molecules with a rich and surprising phase behavior. Nonequilibrium co...
The authors would like to acknowledge many valuable discussions with Mark Bowick, Daniel L. Barton, ...
Spherical confinement of nematic liquid crystals leads to the formation of equilibrium director fiel...
Recent experimental observations have demonstrated that topological defects can facilitate the devel...
The formation of emulsions from multiple immiscible fluids is governed by classical concepts such as...
We study the interplay between flow, structure, and topology in liquid crystals, in both passive and...
Living cells sense the mechanical features of their environment and adapt to it by actively remodeli...
Liquid shells (e.g., double emulsions, vesicles, etc.) are susceptible to interfacial instability an...
In this thesis, a new way of simulating a two-way coupling between a liquid crystal and an immersed ...
This thesis presents analytical and numerical studies of the nonequilibrium dynamics of active nemat...
This dissertation describes experiments which explore assembly and self-shaping behavior of liquid c...
Active liquid crystals are a new class of soft materials that have recently raised a huge interest. ...
peer reviewedBy photopolymerizing liquid crystal shells, their rich variety of self-assembled struct...
This article may be downloaded for personal use only. Any other use requires prior permission of the...
From the mitotic spindle up to tissues and biofilms, many biological systems behave as active drople...