Research School of Polymer Materials, School of Materials Science and Engineering, Jiangsu University, Zhenjiang 212013, China.
Anhui Provincial Key Laboratory for Degradation and Monitoring of Pollution of the Environment, School of Chemistry and Material Engineering, Fuyang Normal University, Fuyang 236037, China.
Inorg Chem. 2020 Dec 21;59(24):18131-18140. doi: 10.1021/acs.inorgchem.0c02598. Epub 2020 Dec 10.
The complete removal of tetracycline residuals under visible light still is a challenging task because of their robust ring structure. To tackle this issue, we explore a novel BiO-sensitized TiO visible-light photocatalyst by combining p-n heterojunction with hollow structure. The hollow TiO/BiO photocatalyst manifests excellent photocatalytic performance and recyclability toward the complete degradation (100%) of antibiotics under visible light (λ > 420 nm) because of the synergistic effect of p-n heterojunction and hollow structure, successfully overcoming the challenge of the incomplete removal of antibiotics over almost all of the reported visible-light photocatalysts. Additionally, the effects of inorganic ions, pH value, water matrix, and outdoor light on the degradation of tetracyclines were investigated with many details. Notably, the degradation pathways and mechanism of tetracycline were revealed according to trapping experiments, HPLC-MS, and photoelectrochemical characterizations. Therefore, this work provides a new insight into developing visible-light photocatalysts with excellent photocatalytic performances for the complete removal of other refractory contaminants.
由于四环素有坚固的环结构,因此在可见光下完全去除四环素有一定的难度。为了解决这个问题,我们通过结合 p-n 异质结和中空结构,探索了一种新型的 BiO 敏化 TiO2 可见光光催化剂。中空 TiO2/BiO 光催化剂表现出优异的光催化性能和可回收性,可在可见光(λ > 420nm)下完全降解抗生素(100%),这是由于 p-n 异质结和中空结构的协同作用,成功克服了几乎所有已报道的可见光光催化剂中抗生素去除不完全的挑战。此外,还详细研究了无机离子、pH 值、水基质和户外光照对四环素降解的影响。值得注意的是,通过捕获实验、HPLC-MS 和光电化学特性揭示了四环素的降解途径和机制。因此,这项工作为开发具有优异光催化性能的可见光光催化剂以完全去除其他难处理污染物提供了新的思路。