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Reconfigurable interactions and three-dimensional patterning of colloidal particles and defects in lamellar soft media

机译:层状软介质中胶体颗粒和缺陷的可重构相互作用和三维构图

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摘要

Colloidal systems find important applications ranging from fabrication of photonic crystals to direct probing of phenomena typically encountered in atomic crystals and glasses. New applications—such as nanoantennas, plasmonic sensors, and nanocircuits—pose a challenge of achieving sparse colloidal assemblies with tunable interparticle separations that can be controlled at will. We demonstrate reconfigurable multiscale interactions and assembly of colloids mediated by defects in cholesteric liquid crystals that are probed by means of laser manipulation and three-dimensional imaging. We find that colloids attract via distance-independent elastic interactions when pinned to the ends of cholesteric oily streaks, line defects at which one or more layers are interrupted. However, dislocations and oily streaks can also be optically manipulated to induce kinks, allowing one to lock them into the desired configurations that are stabilized by elastic energy barriers for structural transformation of the particle-connecting defects. Under the influence of elastic energy landscape due to these defects, sublamellar-sized colloids self-assemble into structures mimicking the cores of dislocations and oily streaks. Interactions between these defect-embedded colloids can be varied from attractive to repulsive by optically introducing dislocation kinks. The reconfigurable nature of defect–particle interactions allows for patterning of defects by manipulation of colloids and, in turn, patterning of particles by these defects, thus achieving desired colloidal configurations on scales ranging from the size of defect core to the sample size. This defect-colloidal sculpturing may be extended to other lamellar media, providing the means for optically guided self-assembly of mesoscopic composites with predesigned properties.
机译:胶体系统发现了重要的应用,从光子晶体的制造到直接探测原子晶体和玻璃中通常遇到的现象。诸如纳米天线,等离子体传感器和纳米电路等新应用带来了挑战,要实现具有可随意控制的可调粒子间间距的稀疏胶体组件。我们展示了可重构的多尺度相互作用和胶体的组装,该胶体由胆甾型液晶中的缺陷所介导,该缺陷是通过激光操纵和三维成像来探测的。我们发现,当胶体固定在胆甾型油性条纹的末端时,胶体通过与距离无关的弹性相互作用吸引,线状缺陷被一层或多层打断。但是,位错和油性条纹也可以进行光学处理,以引起扭结,使人们可以将其锁定在所需的构型中,并通过弹性能垒将其稳定,以实现颗粒连接缺陷的结构转变。由于这些缺陷,在弹性能态的影响下,亚层大小的胶体自组装成模仿位错和油性条纹核心的结构。这些嵌入了缺陷的胶体之间的相互作用可通过光学引入位错纽从吸引到排斥而变化。缺陷与粒子之间相互作用的可重配置性质允许通过操纵胶体来对缺陷进行构图,进而通过这些缺陷对粒子进行构图,从而实现从缺陷核的尺寸到样品尺寸的各种规模的所需胶体结构。这种有缺陷的胶体雕刻可以扩展到其他层状介质,为介孔复合材料的光学引导自组装提供具有预先设计的特性的手段。

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