Xie Taiping, Li Hui, Liu Chenglun, Yang Jun, Xiao Tiancun, Xu Longjun
State Key Laboratory of Coal Mine Disaster Dynamics and Control, Chongqing University, Chongqing 400044, China.
Chongqing Key Laboratory of Extraordinary Bond Engineering and Advanced Materials Technology (EBEAM), Yangtze Normal University, Chongqing 408100, China.
Nanomaterials (Basel). 2018 May 29;8(6):380. doi: 10.3390/nano8060380.
Magnetic photocatalyst BiVO₄/Mn-Zn ferrite (MnZnFe₂O₄)/reduced graphene oxide (RGO) was synthesized by a simple calcination and reduction method. The magnetic photocatalyst held high visible light-absorption ability with low band gap energy and wide absorption wavelength range. Electrochemical impedance spectroscopies illustrated good electrical conductivity which indicated low charge-transfer resistance due to incorporation of MnZnFe₂O₄ and RGO. The test of photocatalytic activity showed that the degradation ratio of rhodamine B (RhB) reached 96.0% under visible light irradiation after only 1.5 h reaction. The photocatalytic mechanism for the prepared photocatalyst was explained in detail. Here, the incorporation of RGO enhanced the specific surface area compared with BiVO4/MnZnFe₂O₄.The larger specific surface area provided more active surface sites, more free space to improve the mobility of photo-induced electrons, and further facilitated the effective migration of charge carriers, leading to the remarkable improvement of photocatalytic performance. Meanwhile, RGO was the effective acceptor as well as transporter of photo-generated electron hole pairs. •O₂ was the most active species in the photocatalytic reaction. BiVO₄/MnZnFe₂O₄/RGO had quite a wide application in organic contaminants removal or environmental pollution control.
通过简单的煅烧和还原方法合成了磁性光催化剂BiVO₄/Mn-Zn铁氧体(MnZnFe₂O₄)/还原氧化石墨烯(RGO)。该磁性光催化剂具有高可见光吸收能力,带隙能量低,吸收波长范围宽。电化学阻抗谱表明其具有良好的导电性,这表明由于掺入了MnZnFe₂O₄和RGO,电荷转移电阻较低。光催化活性测试表明,罗丹明B(RhB)在可见光照射下仅反应1.5小时后,降解率就达到了96.0%。详细解释了所制备光催化剂的光催化机理。在此,与BiVO₄/MnZnFe₂O₄相比,RGO的掺入增加了比表面积。更大的比表面积提供了更多的活性表面位点、更多的自由空间来提高光生电子的迁移率,并进一步促进了电荷载流子的有效迁移,从而导致光催化性能的显著提高。同时,RGO是光生电子空穴对的有效受体和传输体。•O₂是光催化反应中最活跃的物种。BiVO₄/MnZnFe₂O₄/RGO在有机污染物去除或环境污染控制方面具有相当广泛的应用。