Synergistic Effect of a Molecular Cocatalyst and a Heterojunction in a 1 D Semiconductor Photocatalyst for Robust and Highly Efficient Solar Hydrogen Production

ChemSusChem. 2016 Nov 9;9(21):3084-3092. doi: 10.1002/cssc.201600871. Epub 2016 Oct 12.

Abstract

Photocatalytic production of hydrogen by water splitting is a promising pathway for the conversion of solar energy into chemical energy. However, the photocatalytic conversion efficiency is often limited by the sluggish transfer of the photogenerated charge carriers, charge recombination, and subsequent slow catalytic reactions. Herein, we report a highly active noble-metal-free photocatalytic system for hydrogen production in water. The system contains a water-soluble nickel complex as a molecular cocatalyst and zinc sulfide on 1D cadmium sulfide as the heterojunction photocatalyst. The complex can efficiently transport photogenerated electrons and holes over a heterojunction photocatalyst to hamper charge recombination, leading to highly improved catalytic efficiency and durability of a heterojunction photocatalyst- molecular cocatalyst system. The results show that under optimal conditions, the average apparent quantum yield was approximately 58.3 % after 7 h of irradiation with monochromatic 420 nm light. In contrast, the value is only 16.8 % if the molecular cocatalyst is absent. Such a remarkable performance in a molecular cocatalyst-based photocatalytic system without any noble metal loading has, to the best of our knowledge, not been reported to date.

Keywords: electron transfer; heterojunction; hydrogen production; molecular cocatalyst; photocatalysis.

MeSH terms

  • Cadmium Compounds
  • Catalysis
  • Energy Transfer*
  • Hydrogen / chemistry*
  • Light
  • Nickel / chemistry
  • Photochemical Processes*
  • Semiconductors*
  • Solar Energy*
  • Sulfides
  • Water / chemistry
  • Zinc Compounds

Substances

  • Cadmium Compounds
  • Sulfides
  • Zinc Compounds
  • cadmium sulfide
  • Water
  • Nickel
  • Hydrogen
  • zinc sulfide