4.7 Article

Photocatalytic removal of MB and hydrogen evolution in water by (Sr0.6Bi0.305)2Bi2O7/TiO2 heterostructures under visible-light irradiation

Journal

APPLIED SURFACE SCIENCE
Volume 544, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.apsusc.2020.148920

Keywords

TiO2; (Sr0.6Bi0.305)(2)Bi2O7/P25; Heterojunction; Photocatalyst; Hydrogen evolution; Dye degradation

Funding

  1. National Natural Science Foundation of China [52061006, 51401060]
  2. Guangxi Natural Science Foundation [2016GXNSFGA380001, 2020GXNSFAA159122, 2018JJB160017]
  3. Talents Project of Guilin University of Electronic Technology, Guangxi Key Laboratory of Information Materials [201010-Z]
  4. Opening Project of Guangxi Key Laboratory of Calcium Carbonate Resources Comprehensive Utilization [HZXYKFKT201906]

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The study demonstrates that the formation of the SBO/P25 binary heterojunction catalyst on the TiO2 surface accelerates the photocatalytic activity sites, enhancing hydrogen production and pollutant degradation efficiency. Experimental results indicate that the SBO/P25 catalyst has higher hydrogen evolution and MB degradation efficiency compared to pure P25, with excellent stability and recyclability.
Accelerating the separation efficiency of photoexcited electron-hole pairs with the help of binary heterojunction structure is considered to be a promising approach for significantly enhancing the photocatalytic hydrogen production performance of TiO2. Providing more (Sr0.6Bi0.305)(2)Bi2O7 (SBO) catalysts to function as active sites of TiO2, together with the ability to construct heterojunction structures, is highly desirable for photocatalytic hydrogen evolution and pollutant photodegradation. To achieve this goal, in this work, (Sr0.6Bi0.305)(2)Bi2O7/P25 (SBO/P25) binary heterojunction catalyst is formed in situ on the TiO2 surface by a simple one-step hydrothermal method. To evaluate the feasibility of SBO/P25 as a very efficient photocatalyst for degradation of MB and photocatalytic hydrogen evolution, a series of photocatalytic experimental studies were carried out. The experimental result indicated that the existence of heterojunction structure in the SBO/P25 nanocomposites improves the photocatalytic activity of P25. The photocatalytic performance of H-2 evolution from water splitting and MB degradation for an optimal SBO/P25 photocatalyst reached 3.18 mmol g(-1) h(-1) and 3.42 x 10(-2) min(-1), respectively, which were 7.40 and 5.26 times higher than those of pure P25, respectively. The significantly improved catalytic capability on SBO/P25 is mainly ascribed to the enhanced visible light absorption and charge transfer in comparison with P25. In addition, SBO/P25 composites have excellent stability and recyclability, showing great potential for application in wastewater treatment and photocatalytic hydrogen evolution.

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