Zhang Yanhui, Dai Rongying, Hu Shirong
College of Chemistry and Environment, Minnan Normal University, Zhangzhou, 363000, P. R. China.
Phys Chem Chem Phys. 2017 Mar 8;19(10):7307-7315. doi: 10.1039/c7cp00630f.
In recent years, substantial efforts have been devoted to exploring reduced graphene oxide/TiO (RGO/TiO) composite materials; however, there is still a paucity of reports on the construction of reduced graphene oxide/TiO with oxygen vacancies (RGO/TiO-OV) via a facile two-step wet chemistry approach. In this work, we show a proof-of-concept study follow RGO introduced into TiO with oxygen vacancies, the role of oxygen vacancies as active sites in reduced graphene oxide-modified TiO. The photocatalytic performance and related properties of blank-TiO, blank-TiO with oxygen vacancies (blank-TiO-OV), RGO/TiO, and RGO/TiO-OV were comparatively studied. It was found that due to the incorporation of RGO, RGO/TiO and RGO/TiO-OV exhibit a higher photocatalytic performance under simulated solar light irradiation than their counterparts without rGO. More importantly, it was found that blank-TiO has a higher photocatalytic activity than blank-TiO-OV under simulated solar light irradiation. However, RGO/TiO shows a lower photocatalytic activity than rGO/TiO-OV. By a series of combined techniques, we found that the introduction of a component, such as RGO, with the matched energy band to TiO could lead to the formation of a long-lived electron-transfer state, thus prolonging the lifetime of the photogenerated charge carriers. Furthermore, during the photocatalytic process, RGO could tune the role of oxygen vacancies in TiO from recombination centers to active sites. These findings are of great significance for the design of effective photocatalytic materials in the field of solar energy conversion.
近年来,人们致力于探索还原氧化石墨烯/二氧化钛(RGO/TiO)复合材料;然而,通过简便的两步湿化学方法构建具有氧空位的还原氧化石墨烯/二氧化钛(RGO/TiO-OV)的报道仍然很少。在这项工作中,我们展示了一项概念验证研究,即在具有氧空位的TiO中引入RGO,研究氧空位在还原氧化石墨烯改性TiO中作为活性位点的作用。对空白TiO、具有氧空位的空白TiO(空白TiO-OV)、RGO/TiO和RGO/TiO-OV的光催化性能及相关性质进行了比较研究。结果发现,由于RGO的掺入,RGO/TiO和RGO/TiO-OV在模拟太阳光照射下比不含rGO的对应物表现出更高的光催化性能。更重要的是,发现在模拟太阳光照射下,空白TiO比空白TiO-OV具有更高的光催化活性。然而,RGO/TiO的光催化活性低于rGO/TiO-OV。通过一系列组合技术,我们发现引入与TiO能带匹配的组分(如RGO)可导致形成长寿命的电子转移态,从而延长光生电荷载流子的寿命。此外,在光催化过程中,RGO可将TiO中氧空位的作用从复合中心调节为活性位点。这些发现对于太阳能转换领域有效光催化材料的设计具有重要意义。