Cui Yongfei, Sun Huanhuan, Shen Guodong, Jing Panpan, Pu Yongping
School of Materials Science and Engineering, Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials , Shaanxi University of Science and Technology , Xi'an 710021 , Shaanxi , P. R. China.
Langmuir. 2020 Jan 21;36(2):498-509. doi: 10.1021/acs.langmuir.9b02714. Epub 2020 Jan 9.
Cocatalyst surface-loading has been regarded as an effective strategy to promote solar-energy-conversion efficiency. However, the potential influence of surface modification with cocatalysts on the photodegradation pathway and the underlying mechanisms is still unclear. Herein, we have used ferroelectric BaTiO as the substrate, and both the reduction cocatalyst Ag and the oxidation cocatalyst MnO have been successfully loaded onto BaTiO simultaneously by a one-step photodeposition method as evidenced by X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and high-resolution transmission electron microscopy (HRTEM). The influence of dual-cocatalyst surface-loading on photodegradation of rhodamine B has been systematically investigated for the first time. First, the dual-cocatalyst-modified BaTiO outperformed over the single-cocatalyst-loaded BaTiO, and the photodegradation rate of Ag/BaTiO/MnO is about 3 times and 12 times as high as that of Ag/BaTiO and BaTiO/MnO, respectively. The credit is given to the synergistic effect between the reduction and oxidation cocatalysts, prompting charge carrier separation and migration as verified by the transient photocurrent, electrochemical impedance, and photoluminescence (PL) spectrum investigation. Second, in addition to the boosted photodegradation activity, the photodegradation pathway is found to be altered as well when using Ag/BaTiO/MnO. High-performance liquid chromatography (HPLC) analysis indicated that a highly selective stepwise deethylation process predominates over chromophore cleavage in the Ag/BaTiO/MnO system, while it is reverse for the Ag/BaTiO system. This phenomenon is attributed to the different dye molecule adsorption modes. Furthermore, the radical trapping experiment shows that holes play a major role in the degradation process, and the recycle test proves the excellent stability of Ag/BaTiO/MnO. Our findings may add another layer of understanding depth to cocatalyst surface modification in photodegradation applications.
助催化剂表面负载被视为提高太阳能转换效率的有效策略。然而,助催化剂表面改性对光降解途径及潜在机制的潜在影响仍不清楚。在此,我们以铁电体BaTiO为基底,通过一步光沉积法成功地将还原助催化剂Ag和氧化助催化剂MnO同时负载到BaTiO上,X射线光电子能谱(XPS)、扫描电子显微镜(SEM)和高分辨率透射电子显微镜(HRTEM)证明了这一点。首次系统研究了双助催化剂表面负载对罗丹明B光降解的影响。首先,双助催化剂改性的BaTiO比单助催化剂负载的BaTiO表现更优,Ag/BaTiO/MnO的光降解速率分别约为Ag/BaTiO和BaTiO/MnO的3倍和12倍。这归功于还原和氧化助催化剂之间的协同效应,瞬态光电流、电化学阻抗和光致发光(PL)光谱研究证实了这种协同效应促进了电荷载流子的分离和迁移。其次,除了增强的光降解活性外,使用Ag/BaTiO/MnO时光降解途径也被发现发生了改变。高效液相色谱(HPLC)分析表明,在Ag/BaTiO/MnO体系中,高度选择性的逐步脱乙基过程比发色团裂解占主导地位,而在Ag/BaTiO体系中则相反。这种现象归因于不同的染料分子吸附模式。此外,自由基捕获实验表明空穴在降解过程中起主要作用,循环测试证明了Ag/BaTiO/MnO具有优异的稳定性。我们的研究结果可能会为光降解应用中助催化剂表面改性增加另一层理解深度。