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April 27, 2026Journal of Biotechnology1 citationsOpen Access

Hydrogen production by immobilised Rhodopseudomonas palustris in two photobioreactor configurations

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GKGrant KeetRPRobert W.M. Pott

Key Points

  • This research aims to investigate hydrogen production efficiency using immobilised Rhodopseudomonas palustris in various photobioreactor setups.
  • Immobilisation of Rhodopseudomonas palustris in polyvinyl alcohol-based hydrogels at different cell densities.
  • Utilization of continuously stirred and tubular photobioreactors for hydrogen generation.
  • Optimization of biomass and hydrogel loading for enhancing hydrogen output.
  • Achieved glycerol to hydrogen conversion rate of 75 ± 15%.
  • Produced hydrogen with >90% purity.
  • Obtained volumetric production rate of 6.84 ± 0.1 mL<sub>H2</sub>/L/h and specific production rate of 16.2 ± 0.2 mL<sub>H2</sub>/g<sub>CDW</sub>/h.

Abstract

In this study, the phototrophic bacterium, Rhodopseudomonas palustris was immobilised at differing cell densities in transparent, chemically and mechanically resistant, biocompatible polyvinyl alcohol-based hydrogels and employed in photobioreactors to produce hydrogen. The novel PVA-based hydrogels developed and employed in this study were formed under ambient conditions, without the need for toxic gelation inducers, harsh gelation conditions or costly intermediates. In a novel application, these immobilised biocatalysts were employed in continuously stirred photobioreactors, designed to determine the system specific optimal biomass and hydrogel loading for hydrogen production. These results were expanded into the application of the immobilised cells in tubular photobioreactors. In this system, the immobilized bacteria acting as biocatalysts effectively converted the glycerol substrate to high purity (>90% purity) hydrogen, exhibiting a glycerol to hydrogen conversion of 75 ± 15% with a volumetric production rate of 6.84 ± 0.1 mLH2/L/h and a specific production rate equal to 16.2 ± 0.2 mLH2/gCDW/h. This work demonstrates the possibility of using immobilised cells to produce high purity hydrogen, using a waste stream as a substrate.

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Cite This Study

Keet et al. (2026) studied this question.

synapsesocial.com/papers/69eefc23fede9185760d35e5https://doi.org/10.1016/j.jbiotec.2026.04.013
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