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Large-area optoelastic manipulation of colloidal particles in liquid crystals using photoresponsive molecular surface monolayers

机译:使用光响应分子表面单分子膜对液晶中的胶体粒子进行大面积光弹性操纵

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摘要

Noncontact optical trapping and manipulation of micrometer- and nanometer-sized particles are typically achieved by use of forces and torques exerted by tightly focused high-intensity laser beams. Although they were instrumental for many scientific breakthroughs, these approaches find few technological applications mainly because of the small-area manipulation capabilities, the need for using high laser powers, limited application to anisotropic fluids and low-refractive-index particles, as well as complexity of implementation. To overcome these limitations, recent research efforts have been directed toward extending the scope of noncontact optical control through the use of optically-guided electro-kinetic forces, vortex laser beams, plasmonics, and optofluidics. Here we demonstrate manipulation of colloidal particles and self-assembled structures in nematic liquid crystals by means of single-molecule-thick, light-controlled surface monolayers. Using polarized light of intensity from 1,000 to 100,000 times smaller than that in conventional optical tweezers, we rotate, translate, localize, and assemble spherical and complex-shaped particles of various sizes and compositions. By controlling boundary conditions through the monolayer, we manipulate the liquid crystal director field and the landscape of ensuing elastic forces exerted on colloids by the host medium. This permits the centimeter-scale, massively parallel manipulation of particles and complex colloidal structures that can be dynamically controlled by changing illumination or assembled into stationary stable configurations dictated by the "memorized" optoelastic potential landscape due to the last illumination pattern. We characterize the strength of optically guided elastic forces and discuss the potential uses of this noncontact manipulation in fabrication of novel optically- and electrically-tunable composites from liquid crystals and colloids.
机译:通常通过使用紧密聚焦的高强度激光束施加的力和扭矩来实现微米级和纳米级粒子的非接触式光学捕获和操作。尽管这些方法有助于许多科学突破,但这些方法在技术上的应用很少,这主要是由于小面积操作能力,对使用高激光功率的需求,对各向异性流体和低折射率颗粒的有限应用以及复杂性实施。为了克服这些局限性,最近的研究方向是通过使用光导电动势,涡旋激光束,等离子体激元和光流体技术来扩大非接触式光学控制的范围。在这里,我们演示了向列液晶中胶体粒子和自组装结构的操纵,其方式是单分子厚的光控表面单层。使用比传统光镊小的1,000至100,000倍强度的偏振光,我们旋转,平移,定位和组装各种尺寸和成分的球形和复杂形状的粒子。通过控制单分子层的边界条件,我们可以控制液晶指向矢场和随之产生的由宿主介质施加在胶体上的弹力的态势。这允许对粒子和复杂的胶体结构进行厘米级的大规模平行操作,这些操作可以通过更改照明来动态控制,或者组装成由“记忆”的光弹性势态所决定的静止稳定构型,这归因于最后的照明模式。我们表征了光导弹性力的强度,并讨论了这种非接触操作在由液晶和胶体制造新型光学和电可调复合材料中的潜在用途。

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  • 来源
  • 作者单位

    Department of Physics, University of Colorado, Boulder, CO 80309,Liquid Crystal Materials Research Center, University of Colorado, Boulder, CO 80309;

    Department of Physics, University of Colorado, Boulder, CO 80309,Department of Physics, California State Polytechnic University, Pomona, CA 91768;

    Department of Physics, University of Colorado, Boulder, CO 80309,Liquid Crystal Materials Research Center, University of Colorado, Boulder, CO 80309 ,Department of Electrical, Computer, and Energy Engineering and Materials Science and Engineering Program, University of Colorado, Boulder, CO 80309,Renewable and Sustainable Energy Institute, National Renewable Energy Laboratory and University of Colorado, Boulder, CO 80309;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    optical manipulation; photoresponsive surface monolayers; self-assembly;

    机译:光学操纵;光敏表面单层;自组装;
  • 入库时间 2022-08-18 00:41:06

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