4.7 Article

Role of SnS2 in 2D-2D SnS2/TiO2 Nanosheet Heterojunctions for Photocatalytic Hydrogen Evolution

Journal

ACS APPLIED NANO MATERIALS
Volume 2, Issue 4, Pages 2144-2151

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsanm.9b00122

Keywords

solar water splitting; two dimensional materials; nanojunction; cocatalyst; interfacial charge transfer

Funding

  1. Shenzhen Science and Technology Innovation Committee [JCYJ20180-504165648211, JCYJ20170817111443306]
  2. Shenzhen Freedom Exploration Project [K16295046]
  3. NSFC [51802143, 21802066]
  4. Guangdong Provincial Key Laboratory of Soil and Groundwater Pollution Control [2017B030-301012]

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Constructing heterojunctions with face-to-face interface is a new avenue for accelerating the charge separation in semiconductor photocatalysts toward highly efficient solar water splitting systems. Here, a novel SnS2/TiO2 2D-2D ultrathin nanosheet heterostructure was fabricated via a hydrothermal route in two steps. The obtained 2D-2D SnS2/TiO2 nanojunction has not only provided large contact areas but also shortened the charge transport distance, resulting in significantly enhanced photocatalytic H-2 evolution property. The H-2 generation rate obtained for the optimized sample reaches 652.4 mu mol h(-1)g(1), far exceeding (similar to 8 times) that of pristine TiO2 and SnS2 ultrathin nanosheets under simulated solar irradiation. Moreover, further analysis reveals a photoinduced carrier transfer from TiO2 to SnS2 at the interface junction, which causes a partial reduction of the SnS2 cocatalyst to SnS in the nanocomposite during the photocatalytic reactions. These results not only demonstrate that the construction of 2D-2D heterojunction is a promising approach to improve the photocatalytic H-2 production activity of nanostructured semiconductor photocatalysts but also provide new understanding into the role and evolution of SnS2 nanosheets during the photocatalytic reaction process in heterogeneous photocatalyst systems.

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