Temperature impact on thermo-electrochemical behavior of silicon-based photoelectrochemical flow cells
Abstract
Increased attention has been focused on photoelectrochemical redox flow cell systems as a potential integrated technology for simultaneously converting and storing intermittent solar energy. Photoelectrochemical voltammetry and impedance spectroscopy tests were conducted using a single-junction c-Si photoelectrode immersed in Fe(CN)63−/4− under thermal load to evaluate the temperature effect on the thermo-electrochemical performance of silicon-based photoelectrochemical cells. It was observed that the current density significantly increased with temperature as a consequence of enhanced kinetics and electrolyte characteristics, while a detriment to the potential output was identified and predominantly attributed to variations of photovoltaic characteristics. Moreover, it was demonstrated that mass transport enhancement reaches its maximum contribution at 45 °C, followed by a slowdown in the observed trends at higher temperatures, which may lead to improved design development and optimized working conditions.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (2)
Olaya Salvado-Recarey
Institute of Mechanical, Process and Energy Engineering (IMPEE), School of Engineering and Physical Sciences, Heriot-Watt University 1 , Edinburgh EH14 4AS,
Dowon Bae
Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University 2 , Loughborough LE11 3TU,