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Low Catalyst Loading Enhances Charge Accumulation for Photoelectrochemical Water Splitting. | LitMetric

Low Catalyst Loading Enhances Charge Accumulation for Photoelectrochemical Water Splitting.

Angew Chem Int Ed Engl

Department of Chemistry, Merkert Chemistry Center, Boston College, Chestnut Hill, MA, 02467, USA.

Published: August 2023

AI Article Synopsis

  • Solar water oxidation is essential for artificial photosynthesis and involves a process that requires four holes and releases four protons.
  • Research indicates that the density of catalysts used affects the reaction rates, particularly in how they interact with surface hole concentrations on photoelectrodes.
  • The study finds that low-density catalysts enhance charge transfer at low photon flux, but can slow down charge recombination at high photon flux, suggesting that optimizing catalyst density is crucial for improving the performance of solar water splitting devices.

Article Abstract

Solar water oxidation is a critical step in artificial photosynthesis. Successful completion of the process requires four holes and releases four protons. It depends on the consecutive accumulation of charges at the active site. While recent research has shown an obvious dependence of the reaction kinetics on the hole concentrations on the surface of heterogeneous (photo)electrodes, little is known about how the catalyst density impacts the reaction rate. Using atomically dispersed Ir catalysts on hematite, we report a study on how the interplay between the catalyst density and the surface hole concentration influences the reaction kinetics. At low photon flux, where surface hole concentrations are low, faster charge transfer was observed on photoelectrodes with low catalyst density compared to high catalyst density; at high photon flux and high applied potentials, where surface hole concentrations are moderate or high, slower surface charge recombination was afforded by low-density catalysts. The results support that charge transfer between the light absorber and the catalyst is reversible; they reveal the unexpected benefits of low-density catalyst loading in facilitating forward charge transfer for desired chemical reactions. It is implied that for practical solar water splitting devices, a suitable catalyst loading is important for maximized performance.

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Source
http://dx.doi.org/10.1002/anie.202307909DOI Listing

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