Development of efficient photoreactors for solar hydrogen production

The rate of hydrogen evolution from a photocatalytic process depends not only on the activity of a photocatalyst, but also on photoreactor design. Ideally, a photoreactor should be able to absorb the incident light, promoting photocatalytic reactions in an effective manner with minimal photonic losses. There are numerous technical challenges and cost related issues when designing a large-scale photoreactor for hydrogen production. Active stirring of the photocatalyst slurry within a photoreactor is not practical in large-scale applications due to cost related issues. Rather, the design should allow facile self-mixing of the flow field within the photoreactor. In this paper two types of photocatalytic reactor configurations are studied: a batch type design and another involving passive self-mixing of the photolyte. Results show that energy loss from a properly designed photoreactor is mainly due to reflection losses from the photoreactor window. We describe the interplay between the reaction and the photoreactor design parameters as well as effects on the rate of hydrogen evolution. We found that a passive self-mixing of the photolyte is possible. Furthermore, the use of certain engineering polymer films as photoreactor window materials has the potential for substantial cost savings in large-scale applications, with minimal reduction of photon energy utilization efficiency. Eight window materials were tested and the results indicate that Aclar™ polymer film used as the photoreactor window provides a substantial cost saving over other engineering polymers, especially with respect to fused silica glass at modest hydrogen evolution rates.

[1]  D. Goswami A Review of Engineering Developments of Aqueous Phase Solar Photocatalytic Detoxification and Disinfection Processes , 1997 .

[2]  Andrew T. Harris,et al.  Review of Major Design and Scale-up Considerations for Solar Photocatalytic Reactors , 2009 .

[3]  Vincenzo Balzani,et al.  Photochemical conversion of solar energy. , 2008, ChemSusChem.

[4]  Julián Blanco-Gálvez,et al.  Solar Photocatalytic Detoxification and Disinfection of Water: Recent Overview , 2007 .

[5]  Detlef W. Bahnemann,et al.  Photocatalytic water treatment: solar energy applications , 2004 .

[6]  Rufino M. Navarro,et al.  Hydrogen production from renewable sources: biomass and photocatalytic opportunities , 2009 .

[7]  G. L. Puma,et al.  A novel fountain photocatalytic reactor: model development and experimental validation , 2001 .

[8]  Ali T-Raissi,et al.  Preparation of high efficiency visible light activated Pt/CdS photocatalyst for solar hydrogen production , 2007, SPIE Optics + Photonics for Sustainable Energy.

[9]  Detlef W. Bahnemann,et al.  Solar water treatment: principles and reactors , 1997 .

[10]  L. Palmisano,et al.  The combination of heterogeneous photocatalysis with chemical and physical operations: A tool for improving the photoprocess performance , 2006 .

[11]  A. Steinfeld Solar thermochemical production of hydrogen--a review , 2005 .

[12]  N. Muradov,et al.  Hydrogen From Solar Via Light-Assisted High-Temperature Water Splitting Cycles , 2007 .

[13]  J. Farinha Mendes,et al.  Engineering of solar photocatalytic collectors , 2004 .