4.7 Article

Cobalt Porphyrin-Polypyridyl Surface Coatings for Photoelectrosynthetic Hydrogen Production

Journal

INORGANIC CHEMISTRY
Volume 56, Issue 20, Pages 12178-12185

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.inorgchem.7b01509

Keywords

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Funding

  1. National Science Foundation [1653982]
  2. IGERT-SUN - National Science Foundation [1144616]
  3. ASU LightWorks
  4. Direct For Mathematical & Physical Scien
  5. Division Of Chemistry [1653982] Funding Source: National Science Foundation
  6. Division Of Graduate Education
  7. Direct For Education and Human Resources [1144616] Funding Source: National Science Foundation

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Hybrid materials that link light capture and conversion technologies with the ability to drive reductive chemical transformations are attractive as components in photoelectrosynthetic cells. We show that thin-film polypyridine surface coatings provide a molecular interface to assemble cobalt porphyrin catalysts for hydrogen evolution onto a visible-light-absorbing p-type gallium phosphide semiconductor. Spectroscopic techniques, including grazing angle attenuated total reflection Fourier transform infrared spectroscopy, confirm that the cobalt centers of the porphyrin macrocycles coordinate to pyridyl nitrogen sites of the organic surface coating. The cobalt porphyrin surface concentration and fraction of pyridyl sites coordinated to a cobalt center are quantified using complementary methods of ellipsometry, inductively coupled plasma mass spectrometry, and X-ray photoelectron spectroscopy. In aqueous solutions under simulated solar illumination the modified cathode is photochemical), active for hydrogen production, generating the product gas with near-unity Faradaic efficiency at a rate of approximate to 10 mu L min(-1) cm(-2) when studied in a three-electrode configuration and polarized at the equilibrium potential of the H+/H-2, couple. This equates to a photoelectrochemical hydrogen evolution reaction activity of 17.6 H-2 molecules s(-1) Co-1, the highest value reported to date for a molecular-modified semiconductor. Key features of the functionalized photocathode include (1) the relative ease of synthetic preparation made possible by application of an organic surface coating that provides molecular recognition sites for immobilizing the cobalt porphyrin complexes at the semiconductor surface and (2) the use of visible light to drive cathodic fuel-forming reactions in aqueous solutions with no added organic acids or sacrificial chemical reductants.

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