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Efficient Solar-Driven Hydrogen Transfer by Bismuth-Based Photocatalyst with Engineered Basic Sites.

Yitao DaiChao LiYanbin ShenShujie ZhuMathias S HvidLai-Chin WuJørgen SkibstedYongwang LiJ W Hans NiemantsverdrietFlemming BesenbacherNina LockRen Su
Published in: Journal of the American Chemical Society (2018)
Photocatalytic organic conversions involving a hydrogen transfer (HT) step have attracted much attention, but the efficiency and selectivity under visible light irradiation still needs to be significantly enhanced. Here we have developed a noble metal-free, basic-site engineered bismuth oxybromide [Bi24O31Br10(OH)δ] that can accelerate the photocatalytic HT step in both reduction and oxidation reactions, i.e., nitrobenzene to azo/azoxybenzene, quinones to quinols, thiones to thiols, and alcohols to ketones under visible light irradiation and ambient conditions. Remarkably, quantum efficiencies of 42% and 32% for the nitrobenzene reduction can be reached under 410 and 450 nm irradiation, respectively. The Bi24O31Br10(OH)δ photocatalyst also exhibits excellent performance in up-scaling and stability under visible light and even solar irradiation, revealing economic potential for industrial applications.
Keyphrases
  • visible light
  • radiation induced
  • air pollution
  • molecular dynamics
  • photodynamic therapy
  • working memory
  • particulate matter
  • gold nanoparticles
  • risk assessment