Department of Physics and Oxide Research Center, Hankuk University of Foreign Studies, Yongin 17035, Republic of Korea.
Department of Physics and Oxide Research Center, Hankuk University of Foreign Studies, Yongin 17035, Republic of Korea.
J Hazard Mater. 2017 Sep 15;338:447-457. doi: 10.1016/j.jhazmat.2017.05.057. Epub 2017 Jun 1.
In this report, magnetically recoverable sulfur-doped SnFeO/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, which is much higher than that of SFO (0.68min) and SFO/GR (0.91min), 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.
在本报告中,通过简便的溶剂热法成功开发了可回收磁性硫掺杂 SnFeO/石墨烯(S-SFO/GR)纳米杂化物。纳米杂化物的结构、形貌和光学性质的表征表明,S-SFO 颗粒成功嵌入在 GR 纳米片上。通过可见光照射下氯四环素的光催化降解来评价其光催化活性。在具有不同质量比的复合材料中,在 SFO 中含有 9wt%S 和 GR(9S-SFO/GR-15)的纳米杂化物的准一级速率常数高达 1.83min,远高于 SFO(0.68min)和 SFO/GR(0.91min),这证实了 S 和 GR 对光催化过程的重要作用。S、SFO 和 GR 的三种成分的结合增强了可见光吸收能力,并抑制了光生电子-空穴的复合。9S-SFO/GR-15 纳米杂化物可通过磁铁轻松回收,并可重复使用五次,光催化效率仍保持在约 70%。提出了一种解释所制备纳米杂化物高效光催化性能的可能催化机制。