4.6 Article

Dye-catalyst dyads for photoelectrochemical water oxidation based on metal-free sensitizers

Journal

RSC ADVANCES
Volume 11, Issue 10, Pages 5311-5319

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0ra10971a

Keywords

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Funding

  1. MIUR (grant Dipartimenti di Eccellenza - 2017 Materials for Energy)
  2. University of Milano-Bicocca (Fondo di Ateneo - Quota Competitiva)
  3. European Union's Horizon 2020 Research and Innovation Programme under the Marie Skodowska-Curie grant [798271]
  4. Royal Society University Research Fellowship [UF/40372]
  5. Marie Curie Actions (MSCA) [798271] Funding Source: Marie Curie Actions (MSCA)

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This study presents the first example of dyad-sensitized photoanodes in DS-PEC water splitting based on metal-free organic dyes and a Ru catalyst, demonstrating excellent electrochemical properties in experiments.
Dye-Sensitized Photoelectrochemical Cells (DS-PECs) have been emerging as promising devices for efficient solar-induced water splitting. In DS-PECs, dyes and catalysts for water oxidation and/or reduction are typically two separate components, thus limiting charge transfer efficiency. A small number of organometallic dyes have been integrated with a catalyst to form an integrated dye-catalyst dyad for photoanodes, but until now no dyads based on metal-free organic dyes have been reported for photoanodes. We herein report the first example of dyad-sensitized photoanodes in DS-PEC water splitting based on metal-free organic dyes and a Ru catalyst. The di-branched donor-pi-acceptor dyes carry a donor carbazole moiety which has been functionalized with two different terminal pyridyl ligands in order to coordinate a benchmark Ru complex as a water oxidation catalyst, affording water oxidation dyads. The two dyads have been fully characterized in their optical and electrochemical properties, and XPS has been used to confirm the presence of the catalyst bonded to the dye anchored to the semiconductor anode. The two dyads have been investigated in DS-PEC, showing an excellent faradaic efficiency (88% average across all cells, with a best cell efficiency of 95%), thus triggering new perspectives for the design of efficient molecular dyads based on metal-free dyes for DS-PEC water splitting.

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