Applied Catalysis2022,Vol.31511.DOI:10.1016/j.apcatb.2022.121570

Revealing different depth boron substitution on interfacial charge transfer in TiO2 for enhanced visible-light H-2 production

Ma, Kangwei Zhang, Meiyu Sun, Wanjun Dong, Congzhao Dong, Yinjuan Hao, Weichang Ding, Yong
Applied Catalysis2022,Vol.31511.DOI:10.1016/j.apcatb.2022.121570

Revealing different depth boron substitution on interfacial charge transfer in TiO2 for enhanced visible-light H-2 production

Ma, Kangwei 1Zhang, Meiyu 1Sun, Wanjun 1Dong, Congzhao 1Dong, Yinjuan 1Hao, Weichang 2Ding, Yong1
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作者信息

  • 1. Lanzhou Univ
  • 2. Beihang Univ
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Abstract

Visible-light catalytic H-2 production is being actively studied as a promising route to replace fossil fuel and improve the environment. Anion doped TiO2 is a kind of modified semiconductor with great research potential. However, the depth of anion substitution is difficult to control and hence its impact on photo-generated carriers is controversial. In addition, the effect of interfacial anion doping on the deposition behavior of co-catalyst is not clear. Herein, only bulk B-doped TiO2 (OB/TiO2) and surface to bulk B-doped TiO2 (STB/TiO2) were prepared successfully. They exhibited excellent visible-light catalytic H-2 production rate, which were 73 times (488.4 mu mol/g/h) and 26 times (171.6 mu mol/g/h) higher than that of the Blank TiO2 (6.7 mu mol/g/h), respectively. By multiple characterizations, directional deposition of Pt induced by electron-deficient structure was observed and photo-generated hole trapping site (Ti-4+O-2-Ti-4+O-4(.-)) was identified in subsurface of TiO2. Surface B would accelerate the recombination of photo-generated carriers, and thus render the photocatalytic performance of OB/TiO2 superior to STB/TiO2. This work provides valuable insights for rationally designing anion doped TiO2 and maximizing the photocatalytic efficiency via structural optimizations.

Key words

Photocatalysis/Bulk-doped/Surface-doped/H-2 production/TiO2/METAL-SUPPORT INTERACTIONS/ANATASE/PHOTOCATALYSIS/NITROGEN/ORIGIN/OXIDES/WATER

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出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量17
参考文献量60
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