4.7 Article

Decomposition of acetaminophen in water by a gas phase dielectric barrier discharge plasma combined with TiO2-rGO nanocomposite: Mechanism and degradation pathway

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 323, 期 -, 页码 719-729

出版社

ELSEVIER
DOI: 10.1016/j.jhazmat.2016.10.008

关键词

Gas phase dielectric barrier discharge plasma; TiO2; Reduced graphene oxide; Acetaminophen; Degradation pathway

资金

  1. National Science and Technology Major Project on Water Pollution Control and Treatment of China [2014ZX07204-008]
  2. Project of State Key Laboratory of Pollution Control and Resource Reuse of China [PCRRF11014]
  3. National Natural Science Foundation of China [51208163]

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Acetaminophen (APAP) served as the model pollutant to evaluate the feasibility of pollutant removal by gas phase dielectric barrier discharge plasma combined with the titanium dioxide-reduced Graphene Oxide (TiO2-rGO) nanocomposite. TiO2-rGO nanocomposite was prepared using the modified hydrothermal method and characterized by TEM and XPS before and after plasma process. The results indicated that the APAP degradation efficiency was significantly improved to 92% after 18 min of discharge plasma treatment coupling 0.25 gL(-1) TiO2-rGO 5% wt at 18 kV, compared with the plasma alone and plasma combined with P25 TiO2. The degradation mechanism for APAP in this system was studied by investigating the effects of the operational variables (e.g. discharge voltage and pH value) and the amount of the generated active species; and the results showed that O-3 and H2O2 yields were influenced notably by adding TiO2-rGO. Also, it was observed that, compared with unused TiO2-rGO, the photocatalytic performance of used TiO2-rGO declined after several recirculation times due to the further reduction of Graphene Oxide in plasma system. Finally, intermediate products were analyzed by UV-vis spectrometry and HPLC/MS, and possible transformation pathways were identified with the support of theoretically calculating the frontier electron density of APAP. (C) 2016 Elsevier B.V. All rights reserved.

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