Proceedings of the National Academy of Sciences · 2016 · 191 citations · 30 references
Solar‑powered CO₂ conversion using hybrid inorganic–biological systems promises to reduce petrochemical use, but the semiconductor‑to‑bacterium electron transfer mechanism remains largely unknown, hindering rational performance improvements. This study investigates how a semiconductor nanoparticle‑sensitized bacterium transforms CO₂ and sunlight into acetic acid. The authors use time‑resolved spectroscopy and biochemical analysis to examine electron and light energy transfer pathways from the semiconductor to the bacterium. They find that multiple pathways facilitate electron and light energy transfer, providing a foundation for future investigation and improvement of complex biotic–abiotic hybrid systems.
Significance Solar-powered chemical production from CO 2 promises to alleviate petrochemical consumption. Hybrid systems of an inorganic semiconductor light harvester and a microbial catalyst offer a viable way forward. Whereas a number of such systems have been described, the semiconductor-to-bacterium electron transfer mechanism remains largely unknown, limiting rational approaches to improving their performance. In this work, we look at how a semiconductor nanoparticle-sensitized bacterium transforms CO 2 and sunlight into acetic acid, a known precursor for fuels, food, pharmaceuticals, and polymers. Using time-resolved spectroscopy and biochemical analysis, we conclude that multiple pathways facilitate electron and light energy transfer from semiconductor to bacterium. This foundational study enables future investigation, understanding, and improvement of complex biotic–abiotic hybrid systems.
30
Harry B. Gray, Jay R. Winkler · Proceedings of the National Academy of Sciences · 2005 · 836 citations · Full text