Modeling photovoltaic-electrochemical water splitting devices for the production of hydrogen under real working conditions

Publication date

2022-03-15

Authors

Grimm, AlexaISNI 0000000492860998
Sainte-Marie, Alix
Kramer, Gert JanORCID 0000-0002-8983-4516ISNI 0000000398134869
Gazzani, MatteoORCID 0000-0002-1352-4562ISNI 0000000492887250

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Advisors

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Document Type

Article
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cc_by

Abstract

Photoelectrochemical splitting of water is potentially a sustainable and affordable solution to produce hydrogen from sun light. Given the infancy stage of technology development, it is important to compare the different experimental concepts and identify the most promising routes. The performance of photoelectrochemical devices is typically measured and reported under ideal irradiation conditions, i.e. 1 sun. However, real-life operating conditions are very different, and are varying in time according to daily and seasonal cycles.In this work, we present an equivalent circuit model for computing the steady state performance of photoelectrochemical cells. The model allows for a computationally efficient, yet precise prediction of the system performance and a comparison of different devices working in real operating conditions. To this end, five different photo electrochemical devices are modeled using experimental results from literature. The calculated performance shows good agreement with experimental data of the different devices. Furthermore, the model is extended to include the effect of illumination and tilt angle on the hydrogen production efficiency. The resulting model is used to compare the devices for different locations with high and low average illumination and different tilt angles. The results show that including real illumination data has a considerable impact on the efficiency of the PV-EC device. The yearly average solar-to-hydrogen efficiency is significantly lower than the ideal one. Moreover, it is dependent on the tilt angle, whose optimal value for European-like latitude is around 40 degrees. Notably, we also show that the most performing device through the whole year might not necessarily be the one with highest sun-to-hydrogen efficiency for one-sun illumination. (C) 2022 The Author(s). Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC.

Keywords

Hydrogen, Photoelectrochemical cell, PV-EC, Solar water-splitting, Renewable Energy, Sustainability and the Environment, Fuel Technology, Condensed Matter Physics, Energy Engineering and Power Technology, SDG 7 - Affordable and Clean Energy

Citation

Grimm, A, Sainte-Marie, A, Kramer, G J & Gazzani, M 2022, 'Modeling photovoltaic-electrochemical water splitting devices for the production of hydrogen under real working conditions', International Journal of Hydrogen Energy, vol. 47, no. 23, pp. 11764-11777. https://doi.org/10.1016/j.ijhydene.2022.01.223