4.8 Article

Rational wiring of photosystem II to hierarchical indium tin oxide electrodes using redox polymers

期刊

Energy & Environmental Science
卷 9, 期 12, 页码 3698-3709

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c6ee01363e

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资金

  1. U.K. Engineering and Physical Sciences Research Council [EP/L015978/1, EP/G037221/1]
  2. U.K. Biology and Biotechnological Sciences Research Council [BB/J000124/1]
  3. Deutsch-Israelische Projektkooperation
  4. Cluster of Excellence RESOLV - Deutsche Forschungsgemeinschaft (DFG) [EXC 1069]
  5. COST Action TD1102 PHOTOTECH
  6. Marie Curie International Incoming Fellowship [PIIF-GA-2012-328085 RPSII]
  7. BBSRC [BB/J000124/1] Funding Source: UKRI
  8. Biotechnology and Biological Sciences Research Council [BB/J000124/1] Funding Source: researchfish
  9. Engineering and Physical Sciences Research Council [1504802] Funding Source: researchfish

向作者/读者索取更多资源

Photosystem II (PSII) is a multi-subunit enzyme responsible for solar-driven water oxidation to release O-2 and highly reducing electrons during photosynthesis. The study of PSII in protein film photoelectrochemistry sheds light into its biological function and provides a blueprint for artificial water-splitting systems. However, the integration of macromolecules, such as PSII, into hybrid bio-electrodes is often plagued by poor electrical wiring between the protein guest and the material host. Here, we report a new benchmark PSII-electrode system that combines the efficient wiring afforded by redox-active polymers with the high loading provided by hierarchically-structured inverse opal indium tin oxide (IO-ITO) electrodes. Compared to flat electrodes, the hierarchical IO-ITO electrodes enabled up to an approximately 50-fold increase in the immobilisation of an Os complex-modified and a phenothiazine-modified polymer. When the Os complex-modified polymer is co-adsorbed with PSII on the hierarchical electrodes, photocurrent densities of up to similar to 410 mu A cm(-2) at 0.5 V vs. SHE were observed in the absence of diffusional mediators, demonstrating a substantially improved wiring of PSII to the IO-ITO electrode with the redox polymer. The high photocurrent density allowed for the quantification of O-2 evolution, and a Faradaic efficiency of 85 +/- 9% was measured. As such, we have demonstrated a high performing and fully integrated host-guest system with excellent electronic wiring and loading capacity. This assembly strategy may form the basis of all-integrated electrode designs for a wide range of biological and synthetic catalysts.

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