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Kilowatt-scale Solar Hydrogen Production System Using a Concentrated Integrated Photoelectrochemical Device

Abstract

The production of synthetic fuels and chemicals from solar energy and abundant reagents offers a promising pathway to a sustainable fuel economy and chemical industry. For the production of hydrogen, photoelectrochemical or integrated photovoltaic and electrolysis devices have demonstrated outstanding performance at the lab scale, but there remains a lack of larger-scale on-sun demonstrations (>100 W). Here we present the successful scaling of a thermally integrated photoelectrochemical device—utilizing concentrated solar irradiation— to a kW-scale pilot plant capable of co-generation of hydrogen and heat. A solar-to-hydrogen device-level efficiency of greater than 20% at an H2 production rate of >2.0 kW (>0.8 g min−1) is achieved. A validated model-based optimization highlights the dominant energetic losses and predicts straightforward strategies to improve the system-level efficiency of >5.5% towards the device-level efficiency. We identify solutions to the key technological challenges, control and operation strategies and discuss the future outlook of this emerging technology.

Funding source: This work was funded by the Swiss Federal Ofice of Energy (BFE/ OFEN) SI/501596-01 (S.H.), the European Union’s Horizon 2020 programme (FlowPhotoChem, number 862453, S.H.), a Swiss National Science Foundation Bridge—Proof of Concept grant (178267, S.T.) and the Gebert Rüf Foundation InnoBooster programme (GRS-078/20, S.H. and S.T.). Open access funding provided by EPFL Lausanne.
Related subjects: Production & Supply Chain
Countries: Switzerland
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/content/journal6356
2023-04-10
2024-12-21
/content/journal6356
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