Walker Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX, 78712, USA.
Department of Mechanical Engineering, The University of Texas at Dallas, Richardson, TX, 75080, USA.
Nat Commun. 2023 Aug 23;14(1):5133. doi: 10.1038/s41467-023-40865-y.
Optical tweezers have profound importance across fields ranging from manufacturing to biotechnology. However, the requirement of refractive index contrast and high laser power results in potential photon and thermal damage to the trapped objects, such as nanoparticles and biological cells. Optothermal tweezers have been developed to trap particles and biological cells via opto-thermophoresis with much lower laser powers. However, the intense laser heating and stringent requirement of the solution environment prevent their use for general biological applications. Here, we propose hypothermal opto-thermophoretic tweezers (HOTTs) to achieve low-power trapping of diverse colloids and biological cells in their native fluids. HOTTs exploit an environmental cooling strategy to simultaneously enhance the thermophoretic trapping force at sub-ambient temperatures and suppress the thermal damage to target objects. We further apply HOTTs to demonstrate the three-dimensional manipulation of functional plasmonic vesicles for controlled cargo delivery. With their noninvasiveness and versatile capabilities, HOTTs present a promising tool for fundamental studies and practical applications in materials science and biotechnology.
光镊在从制造到生物技术等多个领域都具有重要意义。然而,对折射率对比和高激光功率的要求会对被捕获的物体(如纳米颗粒和生物细胞)造成潜在的光子和热损伤。光热镊的发展是为了通过光热泳来捕获颗粒和生物细胞,所需的激光功率要低得多。然而,强烈的激光加热和对溶液环境的严格要求限制了它们在一般生物应用中的使用。在这里,我们提出了低温光热泳镊(HOTTs),以在其天然流体中实现低功率捕获各种胶体和生物细胞。HOTTs 利用环境冷却策略,在亚环境温度下同时增强热泳捕获力,并抑制对目标物体的热损伤。我们进一步应用 HOTTs 来演示用于控制货物递送的功能等离子体囊泡的三维操纵。HOTTs 具有非侵入性和多功能性,为材料科学和生物技术中的基础研究和实际应用提供了一种有前途的工具。