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微/纳物体的光热旋转。

Optothermal rotation of micro-/nano-objects.

机构信息

Walker Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX 78712, USA.

Materials Science & Engineering Program and Texas Materials Institute, The University of Texas at Austin, Austin, TX 78712, USA.

出版信息

Chem Commun (Camb). 2023 Feb 21;59(16):2208-2221. doi: 10.1039/d2cc06955e.

Abstract

Due to its contactless and fuel-free operation, optical rotation of micro-/nano-objects provides tremendous opportunities for cellular biology, three-dimensional (3D) imaging, and micro/nanorobotics. However, complex optics, extremely high operational power, and the applicability to limited objects restrict the broader use of optical rotation techniques. This Feature Article focuses on a rapidly emerging class of optical rotation techniques, termed optothermal rotation. Based on light-mediated thermal phenomena, optothermal rotation techniques overcome the bottlenecks of conventional optical rotation by enabling versatile rotary control of arbitrary objects with simpler optics using lower powers. We start with the fundamental thermal phenomena and concepts: thermophoresis, thermoelectricity, thermo-electrokinetics, thermo-osmosis, thermal convection, thermo-capillarity, and photophoresis. Then, we highlight various optothermal rotation techniques, categorizing them based on their rotation modes (, in-plane and out-of-plane rotation) and the thermal phenomena involved. Next, we explore the potential applications of these optothermal manipulation techniques in areas such as single-cell mechanics, 3D bio-imaging, and micro/nanomotors. We conclude the Feature Article with our insights on the operating guidelines, existing challenges, and future directions of optothermal rotation.

摘要

由于其非接触式和无燃料操作,微/纳米物体的旋光为细胞生物学、三维(3D)成像和微/纳米机器人技术提供了巨大的机会。然而,复杂的光学、极高的操作功率以及对有限物体的适用性限制了光学旋转技术的更广泛应用。本文重点介绍一类新兴的光学旋转技术,称为光热旋转。基于光介导的热现象,光热旋转技术通过使用更低的功率和更简单的光学器件,实现了对任意物体的多功能旋转控制,克服了传统光学旋转的瓶颈。我们从基本的热现象和概念开始:热泳、热电、热电泳、热渗透、热对流、热毛细现象和光泳。然后,我们突出了各种光热旋转技术,并根据它们的旋转模式(面内和面外旋转)和涉及的热现象对它们进行分类。接下来,我们探讨了这些光热操纵技术在单细胞力学、3D 生物成像和微/纳米马达等领域的潜在应用。最后,我们对光热旋转的操作准则、现有挑战和未来方向进行了总结。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/85ea/10392036/bc08ed6e821d/d2cc06955e-f1.jpg

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