4.6 Article

Liquid Optothermoelectrics: Fundamentals and Applications

期刊

LANGMUIR
卷 37, 期 4, 页码 1315-1336

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.0c03182

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资金

  1. National Science Foundation [NSF-CMMI-1761743, NSF-ECCS-2001650]
  2. National Aeronautics and Space Administration [80NSSC17K0520]
  3. National Institute of General Medical Sciences of the National Institutes of Health [DP2GM128446]

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Liquid thermoelectricity involves redistributing ions in an electrolytic solution under temperature gradients to form electric fields, which can manipulate colloidal particles. By utilizing laser interaction and absorbing nanostructures, optothermoelectrics can manage heat on micro and nanoscales to trap, manipulate, and pull particles with low optical power, showing great potential in microswimmers and nanoscience.
Liquid thermoelectricity describes the redistribution of ions in an electrolytic solution under the influence of temperature gradients, which leads to the formation of electric fields. The thermoelectric field is effective in driving the thermophoretic migration of charged colloidal particles for versatile manipulation. However, traditional macroscopic thermoelectric fields are not suitable for particle manipulations at high spatial resolution. Inspired by optical tweezers and relevant optical manipulation techniques, we employ laser interaction with light-absorbing nanostructures to achieve subtle heat management on the micro- and nanoscales. The resulting thermoelectric fields are exploited to develop new optical technologies, leading to a research field known as liquid optothermoelectrics. This Invited Feature Article highlights our recent works on advancing fundamentals, technologies, and applications of optothermoelectrics in colloidal solutions. The effects of light irradiation, substrates, electrolytes, and particles on the optothermoelectric manipulations of colloidal particles along with their theoretical limitations are discussed in detail. Our optothermoelectric technologies with the versatile capabilities of trapping, manipulating, and pulling colloidal particles at low optical power are finding applications in microswimmers and nanoscience. With its intricate interfacial processes and tremendous technological promise, optothermoelectrics in colloidal solutions will remain relevant for the foreseeable future.

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