Ding Hongru, Chen Zhihan, Ponce Carolina, Zheng Yuebing
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.
ArXiv. 2023 Jan 14:arXiv:2301.04297v2.
Controllable rotation of micro-/nano-objects provides tremendous opportunities for cellular biology, three-dimensional (3D) imaging, and micro/nanorobotics. Among different rotation techniques, optical rotation is particularly attractive due to its contactless and fuel-free operation. However, optical rotation precision is typically impaired by the intrinsic optical heating of the target objects. Optothermal rotation, which harnesses light-modulated thermal effects, features simpler optics, lower operational power, and higher applicability to various objects. In this Feature Article, we discuss the recent progress of optothermal rotation with a focus on work from our research group. We categorize the various rotation techniques based on distinct physical mechanisms, including thermophoresis, thermoelectricity, thermo-electrokinetics, thermo-osmosis, thermal convection, and thermo-capillarity. Benefiting from the different rotation modes (i.e., in-plane and out-of-plane rotation), diverse applications in single-cell mechanics, 3D bio-imaging, and micro/nanomotors are demonstrated. We conclude the article with our perspectives on the operating guidelines, existing challenges, and future directions of optothermal rotation.
微纳物体的可控旋转为细胞生物学、三维(3D)成像和微纳机器人技术带来了巨大机遇。在不同的旋转技术中,光学旋转因其非接触和无需燃料的操作方式而格外引人注目。然而,目标物体的固有光学加热通常会损害光学旋转精度。光热旋转利用光调制热效应,具有光学系统更简单、操作功率更低以及对各种物体适用性更高的特点。在这篇专题文章中,我们将讨论光热旋转的最新进展,重点介绍我们研究小组的工作。我们根据不同的物理机制对各种旋转技术进行分类,包括热泳、热电效应、热电动学、热渗透、热对流和热毛细作用。受益于不同的旋转模式(即平面内和平面外旋转),光热旋转在单细胞力学、3D生物成像和微纳马达等方面展示了多样的应用。我们在文章结尾阐述了对光热旋转的操作指南、现存挑战及未来方向的看法。