4.6 Article

Redox hydrogels with adjusted redox potential for improved efficiency in Z-scheme inspired biophotovoltaic cells

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 16, Issue 24, Pages 11936-11941

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4cp00380b

Keywords

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Funding

  1. Cluster of Excellence RESOLV - Deutsche Forschungsgemeinschaft [EXC 1069]
  2. COST Action TD1102 Phototech
  3. DFG travel grant

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The improvement of Z-scheme inspired biophotovoltaics is achieved by fine tuning the properties of redox hydrogels applied as immobilization and electron conducting matrices for the photosystem-protein complexes. The formal potentials of the redox hydrogels are adjusted to the respective redox sites in the photosystems for optimized electron transfer without substantial voltage loss. The anode is based on photosystem 2 (PS2) integrated in a phenothiazine modified redox hydrogel with a formal potential of -1 mV vs. SHE, which is 59 mV more positive than the Q(B) acceptor site in PS2. The cathode is based on photosystem 1 (PS1) contacted via an Os-complex based redox hydrogel with a formal potential of 395 mV vs. SHE, i.e. 28 mV more negative than the primary P-700 electron acceptor of PS1. The potential difference between the two redox hydrogels is 396 mV. An open circuit voltage (V-OC) of 372.5 +/- 2.1 mV could be achieved for the biophotovoltaic cell. The maximum power output is 1.91 +/- 0.56 mu W cm(-2) and the conversion efficiency (eta) is 4.5 Chi 10(-5), representing a 125-fold improvement in comparison to the previously proposed device exploiting the photosynthetic Z-scheme for electrical energy production.

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