Ren Hengxin, Lv Kuilin, Liu Wenbin, Li Pengfei, Zhang Yu, Lv Yuguang
College of Pharmacy, Jiamusi University, Jiamusi 154007, China.
College of Materials Science and Engineering, Jiamusi University, Jiamusi 154007, China.
Micromachines (Basel). 2022 Sep 27;13(10):1604. doi: 10.3390/mi13101604.
Z-scheme heterojunction photocatalytic nanomaterial designs have attracted attention due to their high catalytic performance. Deep eutectic solvents (DESs) have been used as green, sustainable media, acting as solvents and structure inducers in the synthesis of nanomaterials. In this work, a novel visible-light-absorption-enhanced bismuth vanadate/bismuth oxychloride/sulfur, nitrogen co-doped graphene quantum dot (BiVO/BiOCl/S,N-GQDS) heterojunction photocatalyst was prepared in a deep eutectic solvent. The photosynthetic activity of the BiVO/BiOCl/S,N-GQDS composite was determined by the photocatalytic degradation of rhodamine B (RhB) under visible-light irradiation. The results showed that the highest photocatalytic activity of BiVO/BiOCl/S,N-GQDS was achieved when the doping amount of S,N-GQDS was 3%, and the degradation rate of RhB reached 70% within 5 h. The kinetic and photocatalytic cycles showed that the degradation of Rhb was in accordance with the quasi-primary degradation kinetic model, and the photocatalytic performance remained stable after four photocatalytic cycles. Ultraviolet-visible diffuse reflectance (UV-DRS) and photoluminescence (PL) experiments confirmed that BiVO/BiOCl/S,N-GQDS ternary heterojunctions have a narrow band gap energy (2.35 eV), which can effectively improve the separation efficiency of the photogenerated electron-hole pairs and suppress their complexation. This is due to the construction of a Z-scheme charge process between the BiVO/BiOCl binary heterojunction and S,N-GQDS, which achieves effective carrier separation and thus a strong photocatalytic capability. This work not only provides new insights into the design of catalysts using a green solvent approach but also provides a reference for the study of heterojunction photocatalytic materials based on bismuth vanadate, as well as new ideas for other photocatalytic materials.
Z 型异质结光催化纳米材料设计因其高催化性能而备受关注。深共熔溶剂(DESs)已被用作绿色、可持续的介质,在纳米材料合成中充当溶剂和结构诱导剂。在这项工作中,在深共熔溶剂中制备了一种新型的可见光吸收增强的钒酸铋/氯氧化铋/硫、氮共掺杂石墨烯量子点(BiVO/BiOCl/S,N-GQDs)异质结光催化剂。通过在可见光照射下对罗丹明 B(RhB)的光催化降解来测定 BiVO/BiOCl/S,N-GQDs 复合材料的光合活性。结果表明,当 S,N-GQDs 的掺杂量为 3%时,BiVO/BiOCl/S,N-GQDs 具有最高的光催化活性,RhB 在 5 小时内的降解率达到 70%。动力学和光催化循环表明,RhB 的降解符合准一级降解动力学模型,经过四个光催化循环后光催化性能保持稳定。紫外可见漫反射(UV-DRS)和光致发光(PL)实验证实,BiVO/BiOCl/S,N-GQDs 三元异质结具有窄带隙能量(2.35 eV),这可以有效提高光生电子-空穴对的分离效率并抑制它们的复合。这是由于在 BiVO/BiOCl 二元异质结和 S,N-GQDs 之间构建了 Z 型电荷转移过程,实现了有效的载流子分离,从而具有很强的光催化能力。这项工作不仅为使用绿色溶剂方法设计催化剂提供了新的见解,也为基于钒酸铋的异质结光催化材料的研究提供了参考,同时为其他光催化材料提供了新思路。