| Literature DB >> 28595159 |
Yuefa Jia1, Changjin Wu1, B W Lee1, Chunli Liu2, Seokwon Kang3, Taehyoung Lee3, Yun Chang Park4, Ran Yoo5, Wooyoung Lee5.
Abstract
In this report, magnetically recoverable sulfur-doped SnFe2O4/graphene (S-SFO/GR) nanohybrids have been successfully developed via a facile solvothermal method. The characterizations on the structural, morphology, and optical properties of the nanohybrids indicate that S-SFO particles are successfully embedded on the GR nanosheets. The photocatalytic activity has been evaluated by photocatalytic degradation of chlorotetracycline under visible light irradiation. Among the composites with various mass ratios, the quasi-first-order rate constant of the nanohybrids formed with 9wt% S in SFO and 15wt% GR (9S-SFO/GR-15) can reach as high as 1.83min-1, which is much higher than that of SFO (0.68min-1) and SFO/GR (0.91min-1), confirming the important role of S and GR for the photocatalytic process. The combination of the three components of S, SFO, and GR has enhanced the visible light absorption capability and inhibited the recombination of photogenerated electron-hole. The 9S-SFO/GR-15 nanohybrids can be recovered easily by a magnet and reused for five times with remained photocatalytic efficiency about 70%. A possible catalytic mechanism explaining the efficient photocatalytic performances of the prepared nanohybrids has been proposed.Entities:
Keywords: Chlorotetracycline; Graphene; Photocatalytic; SnFe(2)O(4); Sulfur
Year: 2017 PMID: 28595159 DOI: 10.1016/j.jhazmat.2017.05.057
Source DB: PubMed Journal: J Hazard Mater ISSN: 0304-3894 Impact factor: 10.588