4.7 Article

Atomic heterojunction-induced accelerated charge transfer for boosted photocatalytic hydrogen evolution over 1D CdS nanorod/2D ZnIn2S4 nanosheet composites

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 604, Issue -, Pages 500-507

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2021.07.041

Keywords

1D CdS/2D ZnIn2S4; Atomic-interaction heterojunctions; Electronic coupling; Accelerated charge transfer

Funding

  1. National Natural Science Foundation of China [U1904195]
  2. Key Research Programs in Universities of Henan Province [21A150042]
  3. Program for Science & Technology Innovative Research Team in University of Henan Province [20IRTSTHN007]
  4. Science and Technology Research Project of Henan Province [202102210055]
  5. Innovative Experimental Projects for College Students of Henan Province [202110483039]
  6. Shangqiu Normal University [2020-DXS-28]
  7. Starting Research Fund of Shangqiu Normal University

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This study presents novel atomic CdS/ZnIn2S4 heterojunctions with superior photocatalytic hydrogen generation activity, achieved through specific design and theoretical calculations, offering a new paradigm for efficient solar-driven energy conversion.
Design of highly efficient heterojunctions for photocatalytic hydrogen evolution is of significant importance to address the energy shortage and environmental crisis. Nevertheless, the smart design of semiconductor-based heterojunctions at the atomic scale still remains a significant challenge hitherto. Herein, we report novel atomic CdS/ZnIn2S4 heterojunctions by in-situ epitaxially growing 2D ZnIn2S4 nanosheets onto the surface of 1D defective CdS nanorods. The strong electronic coupling between defective CdS and ZnIn2S4 is confirmed by transient photocurrent response measurements, center dot O-2 and center dot OH radicals experiments, and PL results, leading to accelerated interfacial charge separation and transfer. Additionally, the elevated charge transfer and electronic coupling are further confirmed by theoretical calculations. Consequently, CdS/ZnIn2S4 hybrids exhibit superior photocatalytic hydrogen generation activity to pristine CdS. Our findings offer a new paradigm for designing atomic 1D/2D heterojunctions for efficient solar-driven energy conversion. (C) 2021 Elsevier Inc. All rights reserved.

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