Liquid Crystal Institute and Chemical Physics Interdisciplinary Program, Kent State University, Kent, OH, 44242, USA.
Departamento de Fisica, Universidade Tecnológica Federal do Parana-Campus Apucarana, RuaMarcílio Dias, 635, 86812-460, Apucarana, Paraná, Brazil.
Adv Mater. 2017 Aug;29(30). doi: 10.1002/adma.201701903. Epub 2017 Jun 7.
Zigzag pattern formation is a common and important phenomenon in nature serving a multitude of purposes. For example, the zigzag-shaped edge of green leaves boosts the transportation and absorption of nutrients. However, the elucidation of this complicated shape formation is challenging in fluid mechanics and soft condensed matter systems. Herein, a dynamically reconfigurable zigzag pattern deformation of a soft helical superstructure is demonstrated in a photoresponsive self-organized cholesteric liquid crystal superstructure under the simultaneous influence of an applied electric field and light irradiation. The zigzag-shaped pattern can not only be generated and terminated repeatedly on demand, but can also be easily manipulated by alternating irradiation of ultraviolet and visible light while under the influence of a sustained electric field. This unique behavior results from a delicate balance among the variable experimental parameters. The evolution of the zigzag-shaped pattern is successfully modeled by numerical simulations and has been monitored through diffraction of a probe laser. Interestingly, this fascinating zigzag-shaped pattern yields crescent-shaped diffraction pattern. The reversibly controllable dynamic zigzag pattern could enable the fabrication of novel photonic devices and architectures, besides greatly advancing the fundamental understanding of temporal behavior of ordered soft materials under combined stimuli.
之字形图案的形成是自然界中一种常见且重要的现象,具有多种用途。例如,绿色叶子的之字形边缘可以促进营养物质的运输和吸收。然而,在流体力学和软凝聚态系统中,阐明这种复杂的形状形成是具有挑战性的。在此,在光响应自组织胆甾相液晶超结构中,同时施加电场和光照射的影响下,展示了软螺旋超结构的动态可重构之字形图案变形。这种之字形图案不仅可以按需重复生成和终止,而且在持续电场的影响下,通过交替照射紫外线和可见光,还可以轻松地进行操纵。这种独特的行为是由各种实验参数的微妙平衡所导致的。通过数值模拟成功地对之字形图案的演化进行了建模,并通过探测激光的衍射进行了监测。有趣的是,这种迷人的之字形图案产生了新月形的衍射图案。这种可反复控制的动态之字形图案除了极大地推进对组合刺激下有序软物质的时间行为的基本理解之外,还可以为新型光子器件和结构的制造提供可能。