4.8 Article

Decoration of BiVO4 Photoanodes with Near-Infrared Quantum Dots for Boosted Photoelectrochemical Water Oxidation

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 42, Pages 50046-50056

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c15973

Keywords

photoelectrochemical water oxidation; near-infrared; quantum dots; bismuth vanadate; photoanode

Funding

  1. National Key Research and Development Program of China [2019YFB2203400, 2019YFE0121600]
  2. Sichuan Science and Technology Program [2021YFH0054]
  3. 111 Project [B20030]

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This study reported the use of NIR core-shell quantum dots as a light sensitizer and charge carrier separator to enhance the water splitting efficiency in PEC systems by decorating them on the BiVO4 photoanode. The modified photoanodes showed higher photocurrent density and stability.
Broadening light absorption and improving charge carrier separation are very critical to boost the water splitting efficiency in photoelectrochemical (PEC) systems. We herein reported a heterostructured photoanode consisting of BiVO4 and eco-friendly, near-infrared (NIR) CuInSeS@ZnS core-shell quantum dots (QDs) for PEC water oxidation. The decoration of core-shell QDs concurrently extends the absorption range of BiVO4 from the ultraviolet-visible to NIR region and promotes the effective separation and transfer of photo-excited electrons and holes. Without any sacrificial agents and co-catalysts, the as-fabricated NIR core-shell QDs/BiVO4 heterostructured photoanodes exhibit an approximately fourfold higher photocurrent density than that of the bare BiVO4, up to 3.17 mA cm(-2) at 1.23 V versus the reversible hydrogen electrode. It is revealed that both a suitable band alignment and an intimate interfacial junction between QDs and BiVO4 are the main factors that result in enhanced charge separation and transfer efficiencies. We also highlight that the NIR CISeS QDs passivated with a ZnS shell can suppress the non-radiative recombination and enhance the stability of the QD photoanodes for optimized PEC performance. This work provides a facile and effective approach to boost the water oxidation efficiency of semiconductor photoanodes via utilizing NIR core-shell QDs as a light sensitizer and charge carrier separator.

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