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Giant Charge Separation-Driving Force Together with Ultrafluent Charge Transfer in TiO/ZnFe-LDH Photoelectrode via Ferroelectric Interface Engineering. | LitMetric

AI Article Synopsis

  • Hydrogen fuel production using photoelectrochemical (PEC) water-splitting offers a clean energy solution to address environmental challenges.
  • Introducing a ferroelectric layer (BTO) at the semiconductor/WOC interface enhances charge transfer and minimizes issues caused by electron-hole collisions.
  • The integration of ferroelectric BTO significantly improves charge separation and injection efficiency, potentially benefiting future electrocatalytic photoelectrode designs.

Article Abstract

Hydrogen fuel production using photoelectrochemical (PEC) water-splitting technology is incredibly noteworthy as it provides a sustainable and clean method to alleviate the energy environmental crisis. A highly rapid electron shuttle at the semiconductor/WOC (water oxidation cocatalyst) interface is vital to improve the bulk charge transfer and surface reaction kinetics of the photoelectrode in the PEC water-splitting system. Yet, the inevitably inferior interface transition tends to plague the performance enhancement on account of the collision of hole-electron transport across the semi/cat interface. Herein, we address these critical challenges via inserting ferroelectric layer BTO (BaTiO) into the semi/cat interface. The embedded polarization electric field induced by ferroelectric BTO remarkably pumped hole transfer at the semiconductor/WOC (TiO/ZnFe-LDH) interface and selectively tailored the electronic structure of LDH surface-active sites, leading to overwhelmingly improved surface hole transfer kinetics at LDH/electrolyte interface, which minish the electron-hole recombination in bulk and on the surface of TiO. The TiO nanorods encapsulated by ferroelectric-assisted ZnFe-LDH achieve 105% charge separation efficiency improvement and 53.8% charge injection efficiency enhancement compared with pure TiO. This finding offers a strategic design for electrocatalytic-assisted photoelectrode systems by ferroelectric-pumped charge extraction and transfer at the semiconductor/WOC interface.

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Source
http://dx.doi.org/10.1021/acs.inorgchem.4c03125DOI Listing

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