Department of Marine Environmental Engineering, National Kaohsiung University of Science and Technology, Kaohsiung City, 81157, Taiwan.
Institute of Aquatic Science and Technology, National Kaohsiung University of Science and Technology, Kaohsiung City, 81157, Taiwan.
Environ Res. 2023 Dec 1;238(Pt 2):117259. doi: 10.1016/j.envres.2023.117259. Epub 2023 Sep 28.
Nano-heterojunction photocatalytic can operate removal of pollutants, which is basic for the sustainable development of a clean environment. Herein, we propose a novel MoS/SnO (MS) S-scheme heterojunction by a facile hydrothermal process, which is cheap, easily available, highly visible-light response, and good stability. The MS nano-heterojunction suggested superior performance with the photocatalytic degradation of 97.6% within 100 min for ciprofloxacin (CIP) removal, which was 5.74 and 4.88 folds higher than that of pristine MoS and SnO, respectively. The fabricated MS photocatalysts displayed outstanding photocatalytic efficiency toward Cr (VI) reduction. The removal capability of Cr (VI) reached up to 92.5% within 60 min. The photodegradation efficiency was 5.2 folds that of pristine MoS. In addition, the antibacterial performance approximately approached 100% for E. coli within 10 min, which was more apparent than the others. A series of excellent results implied that MS nano-heterojunction had a high ultraviolet and visible light absorbance, larger specific surface area, outstanding electron-hole pairs migration and higher capability of photo-response electrons and holes separation rate. This system offers a novel window into the evolution of nano-heterojunction for wastewater treatment and solar energy harvesting applications.
纳米异质结光催化可以实现污染物的去除,这是清洁环境可持续发展的基础。在此,我们通过简便的水热法提出了一种新型的 MoS/SnO(MS)S 型异质结,该方法具有成本低、易得、对可见光响应高和稳定性好等优点。所提出的 MS 纳米异质结在光催化降解方面表现出优异的性能,在 100 分钟内对环丙沙星(CIP)的去除率达到 97.6%,分别是纯 MoS 和 SnO 的 5.74 倍和 4.88 倍。所制备的 MS 光催化剂对 Cr(VI)还原表现出出色的光催化效率。在 60 分钟内,Cr(VI)的去除率达到 92.5%。光降解效率是纯 MoS 的 5.2 倍。此外,MS 纳米异质结对大肠杆菌的抗菌性能在 10 分钟内接近 100%,这比其他的更为明显。一系列优异的结果表明,MS 纳米异质结具有高的紫外和可见光吸收能力、更大的比表面积、优异的电子-空穴对迁移能力以及更高的光响应电子和空穴分离速率。该体系为废水处理和太阳能收集应用中纳米异质结的发展提供了新的思路。