Issue 10, 2024

Coated electrodes for liquid thermoelectric conversion devices to enhance Fe2+/Fe3+ redox kinetics

Abstract

A liquid thermoelectric conversion device (LTE) converts temperature difference between the electrodes into electric energy via electrochemical Seebeck coefficient α. Here, we systematically investigated Fe2+/Fe3+ redox kinetics at graphite-dispersion coated electrodes in 0.8 M Fe(ClO4)2/Fe(ClO4)3 aqueous solution. We found that the reciprocal of charge transfer resistance Rct and diffusion resistance Rdif increases with increase in the electrode thickness t. In the region of t ≥ 40 μm, total resistance R becomes smaller than that of a commercially available graphite sheet (GS; t = 220 μm). The maximum output power Wmax of a LTE composed of 0.8 M Fe(ClO4)2/Fe(ClO4)3 aqueous electrolyte increased by 37.5% at t = 131 μm, 24.6% at 110 μm, and 8.9% at 40 μm, as compared with that of a LTE composed of the GS.

Graphical abstract: Coated electrodes for liquid thermoelectric conversion devices to enhance Fe2+/Fe3+ redox kinetics

Supplementary files

Article information

Article type
Paper
Submitted
13 Feb 2024
Accepted
02 Apr 2024
First published
02 Apr 2024

Sustainable Energy Fuels, 2024,8, 2138-2143

Coated electrodes for liquid thermoelectric conversion devices to enhance Fe2+/Fe3+ redox kinetics

T. Aiba, D. Inoue and Y. Moritomo, Sustainable Energy Fuels, 2024, 8, 2138 DOI: 10.1039/D4SE00220B

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