4.8 Review

Heat-Mediated Optical Manipulation

Journal

CHEMICAL REVIEWS
Volume 122, Issue 3, Pages 3122-3179

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemrev.1c00626

Keywords

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Funding

  1. National Science Foundation [NSF-CMMI-1761743, NSF-ECCS2001650]
  2. National Aeronautics and Space Administration [80NSSC17K0520]
  3. National Institute of General Medical Sciences of the National Institutes of Health [DP2GM128446]
  4. University Graduate Continuing Fellowship from The University of Texas at Austin

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Progress in optical manipulation has led to significant advancements in various fields. Heat-mediated optical manipulation techniques exploit tailored optothermo-matter interactions and mass transport dynamics to control matter of different compositions, shapes, and sizes. In addition to conventional trapping, these techniques enable distinctive manipulation modes using simple and low-power optics, such as optothermal pulling, nudging, and rotating.
Progress in optical manipulation has stimulated remarkable advances in a wide range of fields, including materials science, robotics, medical engineering, and nanotechnology. This Review focuses on an emerging class of optical manipulation techniques, termed heat-mediated optical manipulation. In comparison to conventional optical tweezers that rely on a tightly focused laser beam to trap objects, heat-mediated optical manipulation techniques exploit tailorable optothermo-matter interactions and rich mass transport dynamics to enable versatile control of matter of various compositions, shapes, and sizes. In addition to conventional tweezing, more distinct manipulation modes, including optothermal pulling, nudging, rotating, swimming, oscillating, and walking, have been demonstrated to enhance the functionalities using simple and low-power optics. We start with an introduction to basic physics involved in heat-mediated optical manipulation, highlighting major working mechanisms underpinning a variety of manipulation techniques. Next, we categorize the heat-mediated optical manipulation techniques based on different working mechanisms and discuss working modes, capabilities, and applications for each technique. We conclude this Review with our outlook on current challenges and future opportunities in this rapidly evolving field of heat-mediated optical manipulation.

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