Key Laboratory of Silicate Materials Science and Engineering (Wuhan University of Technology), Ministry of Education, 122 Luoshi Road, Wuhan 430070, China.
Langmuir. 2010 Jan 5;26(1):591-7. doi: 10.1021/la902117c.
Through comparing the photocatalytic performance of microscale ZnO, nano ZnO, and Degussa P25 titania (P25), it was found that the microscale ZnO exhibited 2.6-35.7 times higher photocatalytic activity for the photodegradation of various dye pollutants than P25 under both UV-visible and visible irradiation and showed much better photostability than the nano ZnO. The photocatalysts were characterized with XRD, Raman, BET, DRUV-vis, adsorption of dye, photoelectrochemical measurement, and PL. The much higher photocataltyic activity of the microscale ZnO than P25 under UV-visible irradiation is attributed to the higher efficiency of generation, mobility, and separation of photoinduced electrons and holes. The much higher visible photocataltyic activity of the microscale ZnO than P25 is due to the higher photosensitization efficiency of electron transfer from an excited dye to the conduction band of the microscale ZnO than that of P25. The much better photostability of the microscale ZnO than the nano ZnO is due to its better crystallinity and lower defects. The photostability of the microscale ZnO is greatly improved by the surface modification of ZnO with a small amount of TiO(2). On the basis of the excellent photocatalytic performance of the microscale ZnO and TiO(2)-modified ZnO, a novel device of coupling photodegradation with light-to-electricity conversion was developed, which is a promising candidate for the photocatalytic removal of dye pollutants and a renewable energy source.
通过比较微尺度 ZnO、纳米 ZnO 和 Degussa P25 锐钛矿(P25)的光催化性能,发现微尺度 ZnO 在紫外光和可见光照射下对各种染料污染物的光降解表现出比 P25 高 2.6-35.7 倍的光催化活性,并且比纳米 ZnO 具有更好的光稳定性。采用 XRD、Raman、BET、DRUV-vis、染料吸附、光电化学测量和 PL 对催化剂进行了表征。微尺度 ZnO 在紫外光照射下比 P25 具有更高的光催化活性,这归因于光诱导电子和空穴的产生、迁移和分离效率更高。微尺度 ZnO 在可见光下比 P25 具有更高的光催化活性,是由于从激发染料向微尺度 ZnO 导带转移的电子光致敏化效率高于 P25。微尺度 ZnO 比纳米 ZnO 具有更好的光稳定性,是由于其结晶度更高,缺陷更少。少量 TiO2 对 ZnO 进行表面修饰可大大提高 ZnO 的光稳定性。基于微尺度 ZnO 和 TiO2 修饰 ZnO 的优异光催化性能,开发了一种将光降解与光电转换相结合的新型装置,该装置有望成为去除染料污染物的光催化剂和可再生能源。