AI Article Synopsis

  • * A new approach is presented that involves a chromophore assembly on metal oxide electrodes, allowing the assembly to convert visible light into oxidizing or reducing equivalents, depending on the configuration.
  • * The effectiveness of the photoelectrodes is influenced by both vertical charge transfer and lateral charge hopping, which work together to improve overall cell efficiency in the photoelectrocatalytic process.

Article Abstract

Integration of photoresponsive chromophores that initiate multistep catalysis is essential in dye-sensitized photoelectrosynthesis cells and related devices. We describe here an approach that incorporates a chromophore assembly surface-bound to metal oxide electrodes for light absorption with an overlayer of catalysts for driving the half-reactions of water splitting. The assembly is a combination of a core-twisted perylene diimide and a ruthenium polypyridyl complex. By altering the connection sequence of the two subunits in the assembly, in their surface-binding to either TiO or NiO, the assembly can be tuned to convert visible light into strongly oxidizing equivalents for activation of an electrodeposited water oxidation catalyst (NiCoO ) at the photoanode, or reducing equivalents for activation of an electrodeposited water reduction catalyst (NiMoS ) at the photocathode. A key element in the design of the photoelectrodes comes from the synergistic roles of the vertical (interlayer) charge transfer and lateral (intralayer) charge hopping in determining overall cell efficiencies for photoelectrocatalysis.

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Source
http://dx.doi.org/10.1021/jacs.8b03453DOI Listing

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