4.7 Article

Simultaneous thermoosmotic and thermoelectric responses in nanoconfined electrolyte solutions: Effects of nanopore structures and membrane properties

期刊

JOURNAL OF COLLOID AND INTERFACE SCIENCE
卷 618, 期 -, 页码 333-351

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2022.03.079

关键词

Thermoosmotic response; Thermoelectric response; Electric double layer; Thermal conductivity; Nanopore; Semi-analytical model; Length-to-radius ratio

资金

  1. National Natural Science Foundation of China [51976157, 51721004]
  2. Fundamental Research Funds for the Central Universities [202106280109]
  3. China Scholarship Council [2018011]
  4. [xzy012020075]

向作者/读者索取更多资源

Nanofluidic systems show potential for thermoelectric conversion and fluid pumping using low-grade heat energy. This study investigates the effects of the structures and properties of nanofluidic systems on thermoelectric and thermoosmotic responses. The findings highlight the significance of these factors in enhancing performance.
Hypothesis: Nanofluidic systems provide an emerging and efficient platform for thermoelectric conversion and fluid pumping with low-grade heat energy. As a basis of their performance enhancement, the effects of the structures and properties of the nanofluidic systems on the thermoelectric response (TER) and the thermoosmotic response (TOR) are yet to be explored. Methods: The simultaneous TER and TOR of electrolyte solutions in nanofluidic membrane pores on which an axial temperature gradient is exerted are investigated numerically and semi-analytically. A semi-analytical model is developed with the consideration of finite membrane thermal conductivity and the reservoir/entrance effect. Findings: The increase in the access resistance due to the nanopore-reservoir interfaces accounts for the decrease of short circuit current at the low concentration regime. The decrease in the thermal conductivity ratio can enhance the TER and TOR. The maximum power density occurring at the nanopore radius twice the Debye length ranges from several to dozens of mW K-2 m(-2) and is an order of magnitude higher than typical thermo-supercapacitors. The surface charge polarity can heavily affect the sign and magnitude of the short-circuit current, the Seebeck coefficient and the open-circuit thermoosmotic coefficient, but has less effect on the short-circuit thermoosmotic coefficient. Furthermore, the membrane thickness makes different impacts on TER and TOR for zero and finite membrane thermal conductivity. (C) 2022 Elsevier Inc. All rights reserved.

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