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Investigating the use of conducting oligomers and redox molecules in CdS-MoFeP biohybrids.

Authors :
Harris AW
Roy S
Ganguly S
Parameswar AV
Lucas FWS
Holewinski A
Goodwin AP
Cha JN
Source :
Nanoscale advances [Nanoscale Adv] 2020 Dec 28; Vol. 3 (5), pp. 1392-1396. Date of Electronic Publication: 2020 Dec 28 (Print Publication: 2021).
Publication Year :
2020

Abstract

In this work we report the effect of incorporating conducting oligophenylenes and a cobaltocene-based redox mediator on photodriven electron transfer between thioglycolic acid (TGA) capped CdS nanorods (NR) and the native nitrogenase MoFe protein (MoFeP) by following the reduction of H <superscript>+</superscript> to H <subscript>2</subscript> . First, we demonstrate that the addition of benzidine-a conductive diphenylene- to TGA-CdS and MoFeP increased catalytic activity by up to 3-fold as compared to CdS-MoFeP alone. In addition, in comparing the use of oligophenylenes composed of one ( p -phenylenediamine), two (benzidine) or three (4,4''-diamino- p -terphenyl)phenylene groups, the largest gain in H <subscript>2</subscript> was observed with the addition of benzidine and the lowest with phenylenediamine. As a comparison to the conductive oligophenylenes, a cobaltocene-based redox mediator was also tested with the TGA-CdS NRs and MoFeP. However, adding either cobaltocene diacid or diamine caused negligible gains in H <subscript>2</subscript> production and at higher concentrations, caused a significant decrease. Agarose gel electrophoresis revealed little to no detectable interaction between benzidine and TGA-CdS but strong binding between cobaltocene and TGA-CdS. These results suggest that the tight binding of the cobaltocene mediator to CdS may hinder electron transfer between CdS and MoFe and cause the mediator to undergo continuous reduction/oxidation events at the surface of CdS.<br />Competing Interests: There are no conflicts to declare.<br /> (This journal is © The Royal Society of Chemistry.)

Details

Language :
English
ISSN :
2516-0230
Volume :
3
Issue :
5
Database :
MEDLINE
Journal :
Nanoscale advances
Publication Type :
Academic Journal
Accession number :
36132854
Full Text :
https://doi.org/10.1039/d0na00678e