4.7 Article

Photocatalytic activity and mechanism of bisphenol a removal over TiO2-x/rGO nanocomposite driven by visible light

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 350, Issue -, Pages 1043-1055

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2018.06.046

Keywords

Endocrine disrupting chemicals; Bisphenol A; Ti3+ self-doped TiO2; TiO2-x/rGO nanocomposite; Visible-light photodegradation; Superoxide radicals

Funding

  1. National Key Technology Support Program [2014BAC13B06]
  2. Program for Innovative Research Team in Shaanxi [2013KCT-13]
  3. Chinese government's Hundred Talent Program of Shaanxi Province
  4. Thousand Talent Program of the Chinese government [Y62HB31601]
  5. Shenzhen Peacock Plan [KQTD2015071616442225]

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In the present study, Ti3+ and oxygen vacancies (Ti3+/O-v) self-doped TiO2 and coupled with a reduced graphene oxide (rGO) nanocomposite (TiO2-x/rGO) was successfully synthesized via a facile hydrothermal-calcination method for the efficient degradation of bisphenol A (BPA) under visible light. The results of XPS, ERP and TEM analyses revealed that the presence of Ti3+/O-v in the lattice of TiO2-x/rGO leads to the narrowed band gap and enhanced visible light harvesting. The chemical bonds (TieOeC) between TiO2-x and rGO act as the channel for electron transfer, consequently resulting in the efficient charge separation, which was investigated and confirmed by such methods as PL spectra and time-resolved PL spectra. In addition, the coupling of TiO2-x and rGO could strongly suppress the aggregation of TiO2-x particles and therefore improve the adsorption of organic pollutants. For the synergistic effect of the three preeminent features mentioned above, TiO2-x/rGO exhibited a 6.16-, 2.92-and 2.55-fold faster reaction rate for BPA degradation than that of pristine TiO2, TiO2/rGO and TiO2-x, respectively. Moreover, the effects of the initial substrate concentration, initial solution pH, catalyst dosage and inorganic anions on BPA removal were also investigated in depth. EPR measurements indicated that center dot O-2(-) as the major oxidizing species, is responsible for the degradation of BPA. Next, the feasible pathway of BPA degradation by TiO2-x/rGO was proposed based on the analysis of intermediate products. Finally, the mechanism of the enhanced photocatalytic performance by TiO2-x/rGO under visible light was discussed. Based on these results, the TiO2-x/rGO nanocomposite could be an efficient and promising photocatalyst for the degradation of organic pollutants in water.

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