Photoelectrocatalytic-Microbial Biohybrid for Nitrogen Reduction.
basic_science · Level V
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- Record sourced from PubMed, PMID 39233547.
- Also identified by DOI 10.1002/adma.202407239.
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Abstract
Nitrogen (N<sub>2</sub>) conversion to ammonia (NH<sub>3</sub>) in a mild condition is a big chemical challenge. The whole-cell diazotrophs based biological NH<sub>3</sub> synthesis is one of the most promising strategies. Herein, the first attempt of photoelectrochemical-microbial (PEC-MB) biohybrid is contributed for artificial N<sub>2</sub> fixation, where Azotobacter vinelandii (A. vinelandii) is interfaced directly with polydopamine encapsulated nickel oxide (NiO) nanosheets (NiO@PDA). By virtue of excellent bio-adhesive activity, high conductivity, and good biocompatibility of PDA layer, abundant A. vinelandii are effectively adsorbed on NiO@PDA to form NiO@PDA/A. vinelandii biohybrid, and the rationally designed biohybrid achieved a record-high NH<sub>3</sub> production yield of 1.85<sup> </sup>µmol h<sup>-1</sup>/10<sup>8</sup> cells (4.14 µmol h<sup>-1</sup> cm<sup>-2</sup>). In addition, this biohybrid can operate both under illumination with a PEC model or in dark with an electrocatalytic (EC) model to implement long-term and successional NH<sub>3</sub> synthesis. The enhancement mechanism of NH<sub>3</sub> synthesis in NiO@PDA/A. vinelandii biohybrid can be ascribed to the increase of nicotinamide adenine dinucleotide-hydrogen (NADH) and adenosine 5-triphosphate (ATP) concentrations and over expression of nitrogen-fixing genes of nifH, nifD and nifK in nitrogenase. This innovative PEC-MB biohybrid strategy sheds light on the fundamental mechanism and establishes proof of concept of biotic-abiotic photosynthetic systems for sustainable chemical production.
Medical subject headings
- Nitrogen
- Nickel
- Indoles
- Azotobacter vinelandii
- Polymers