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首页> 外文期刊>Journal of Applied Physics >Versatile microparticle propulsion system by light-guided dielectrophoresis: Proposed method and theoretical calculation
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Versatile microparticle propulsion system by light-guided dielectrophoresis: Proposed method and theoretical calculation

机译:通过光导介电泳的多功能微粒推进系统:提出的方法和理论计算

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摘要

Developing materials for active matter that can efficiently respond to external stimuli with designed multifold mechanical motions remains a major challenge, and overcoming this will greatly propel the advancement of micromachines and microrobots toward unprecedented biomedical, electronic, and particle-separation applications. Here, we propose an innovative working mechanism that allows multifold-translational-motion control of semiconductor microentities by AC dielectrophoresis with simple visible-light stimulation. We study the dielectrophoresis forces on semiconducting particles of various geometries in aqueous suspension by modeling with the consideration of both the Maxwell-Wagner relaxation and the electrical-double-layer-charging effect. With the obtained understanding, we rationally design a manipulation system that can versatilely transport semiconductors and orient them toward desired directions simultaneously by tuning the light intensity in an electric field. This research could provide insights toward developing a new class of micromachines with rarely found control flexibility and precision and offer a new route toward separation and purification of optoelectric micropartides of different geometries.
机译:用于有效响应外部刺激的活性物质的开发材料仍然是主要的挑战,并且克服这将极大地推动微鼠和微生物对前所未有的生物医学,电子和粒子分离应用的推进。在这里,我们提出了一种创新的工作机制,允许通过具有简单的可见光刺激的AC介电电泳来允许半导体微细的多晶硅间运动控制。通过考虑Maxwell-Wagner弛豫和电双层充电效果,通过建模研究水悬浮液中各种几何形状的半导体颗粒的介电泳力。通过获得的理解,我们理性地设计一种可以通过调整电场中的光强度同时传输半导体并同时向期望的方向定向所需方向的操作系统。该研究可以为开发新类微梭提供的洞察力,很少发现控制灵活性和精度,并提供了不同几何形状的光电微瓶的分离和净化的新途径。

著录项

  • 来源
    《Journal of Applied Physics 》 |2021年第5期| 054902.1-054902.13| 共13页
  • 作者

    Zexi Liang; Donglei (Emma) Fan;

  • 作者单位

    Texas Materials Institute and Materials Science and Engineering Program The University of Texas at Austin Austin Texas 78712 USA;

    Texas Materials Institute and Materials Science and Engineering Program The University of Texas at Austin Austin Texas 78712 USA Walker Department of Mechanical Engineering The University of Texas at Austin Austin Texas 78712 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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