Mancuso Antonietta, Mottola Stefania, Sacco Olga, Vaiano Vincenzo, De Marco Iolanda
Department of Industrial Engineering, University of Salerno, Via Giovanni Paolo II 132, 84084 Fisciano, Italy.
Department of Chemistry and Biology "A. Zambelli", University of Salerno, Via Giovanni Paolo II 132, 84084 Fisciano, Italy.
Nanomaterials (Basel). 2023 Dec 13;13(24):3130. doi: 10.3390/nano13243130.
Heterogeneous photocatalysis is a promising technique for removing pollutants from water. In this work, supercritical antisolvent (SAS)-micronized ZnO (ZnO) is coupled with commercial anatase TiO (PC50) to study the photocatalytic degradation of ceftriaxone under UV and visible light. Diffuse ultraviolet-visible reflectance (UV-vis DRS) measurement revealed that the presence of ZnO leads to a slight absorption in the visible region. Wide-angle X-ray diffraction (WAXD) analysis showed the presence of both ZnO wurtzite and TiO anatase crystalline phases in the composite. Photocatalytic tests proved that the activity of the ZnO/PC50 composite is higher than that of commercial ZnO, SAS-micronized ZnO, and PC50, allowing complete ceftriaxone degradation under UV light after only 2 min of irradiation time. In contrast, about 90% of ceftriaxone degradation is achieved after 180 min of visible-light irradiation. The photocatalytic results for an experiment carried out in the presence of probe scavenger molecules for reactive oxygen species show that hydroxyl radicals and positive holes are both reactive species involved in the ceftriaxone photocatalytic degradation mechanism. Finally, reuse cycles of the ZnOsas/PC50 composite are performed, demonstrating the stability and recyclability of the photocatalyst.
多相光催化是一种很有前景的从水中去除污染物的技术。在这项工作中,超临界抗溶剂(SAS)微粉化的ZnO与商用锐钛矿TiO₂(PC50)相结合,以研究头孢曲松在紫外光和可见光下的光催化降解。漫反射紫外-可见光谱(UV-vis DRS)测量表明,ZnO的存在导致在可见光区域有轻微吸收。广角X射线衍射(WAXD)分析表明,复合材料中同时存在ZnO纤锌矿和TiO₂锐钛矿晶相。光催化测试证明,ZnO/PC50复合材料的活性高于商用ZnO、SAS微粉化ZnO和PC50,在紫外光照射仅2分钟后就能使头孢曲松完全降解。相比之下,在可见光照射180分钟后,头孢曲松的降解率约为90%。在存在活性氧探针清除剂分子的情况下进行的实验的光催化结果表明,羟基自由基和正空穴都是参与头孢曲松光催化降解机制的活性物种。最后,对ZnOₛₐₛ/PC50复合材料进行了重复使用循环实验,证明了光催化剂的稳定性和可回收性。