Light-assisted fermentative hydrogen production in an intimately-coupled inorganic-bio hybrid with self-assembled nanoparticles

Shuo Cui, Li Jiao Tian, Jie Li, Xue Meng Wang, Hou Qi Liu, Xian Zhong Fu, Ru Li He, Paul K.S. Lam, Tian Yin Huang, Wen Wei Li

Research output: Contribution to journalArticlepeer-review

32 Citations (Scopus)

Abstract

Photosensitizing bacterial cells with semiconductor nanoparticles is an attractive way to enhance fermentative hydrogen production metabolism via harnessing solar energy as extra driving force, but the enhancement degree is typically limited by inefficient utilization of extracellular photo-electrons. Here, an intimately-coupled inorganic-bio hybrid with enhanced hydrogen-producing activity was constructed by utilizing self-assembled selenide/ sulfide semiconductor nanoparticles (CdSexS1-x) in Escherichia coli as the light harvester. Due to circumvention of transmembrane electron transfer limitation, this hybrid exhibited 2.6-fold higher hydrogen production rate than those with extracellular nanoparticles and achieved light energy conversion efficiency as high as 27.6%. The incorporation of photocatalysis did not impair the bacterial viability, attributed to an efficient scavenging of photo-excited holes by metabolites (e.g., lactate) and minimal reactive oxygen species production. Overall, the light-assisted fermentation system developed in this study offer opportunities for sustainable production of bio-hydrogen and may be extended to bio-photocatalytic production of other valuable chemicals.

Original languageEnglish
Article number131254
JournalChemical Engineering Journal
Volume428
DOIs
Publication statusPublished - 15 Jan 2022
Externally publishedYes

Keywords

  • Biogenic nanoparticles
  • Electron transfer
  • Hydrogen production
  • Inorganic-bio hybrid
  • Photocatalysis

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