Lu Mingli, Xiao Xinyan, Xiao Yu, Li Jingjing, Zhang Feihu
School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510640, China.
School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510640, China.
J Colloid Interface Sci. 2022 Nov;625:664-679. doi: 10.1016/j.jcis.2022.06.081. Epub 2022 Jun 22.
A 2D/2D BiOIO/BiOBr Z-scheme heterostructure was firstly synthesized by a simple one-pot hydrothermal process and it was used to effectively remove rhodamine B under irradiation of Xe and LED light. The BB-15 heterostructure has an optimal apparent rate constant k of 0.046 min (0.17 min), which is ∼6.2 (89.7) and 3.5 (3.5) times that of BiOIO and BiOBr under the irradiation of Xe light (LED light). The enhanced photocatalytic activity can be attributed to the following points: (1) the face-to-face and tight contact in 2D/2D BiOIO/BiOBr heterostructures provides more migration channels for photogenerated carriers which facilitates the transfer and separation of photogenerated carriers; (2) the Z-scheme photocarrier transport path not only hastens the separation and transfer efficiency of photocarriers in space but also maintains a robust redox capacity; (3) the presence of IO/I redox couple and built-in electric field further encourage the separation and transfer of photocarriers and enhance the photocatalytic activity of the composite. And the O, h, and OH are active species, which are responsible for the photodegrade process of RhB under irradiation of Xe light. This study provided an easy and reliable strategy to design and prepare an efficient bismuth-containing heterojunction, the characterization and evaluation experiment results proved its effectiveness for solar utilization and environmental purification.
通过简单的一锅水热法首次合成了二维/二维BiOIO/BiOBr Z型异质结构,并用于在Xe光和LED光照射下有效去除罗丹明B。BB-15异质结构的最佳表观速率常数k为0.046 min⁻¹(0.17 min⁻¹),在Xe光(LED光)照射下,分别约为BiOIO和BiOBr的6.2倍(89.7倍)和3.5倍(3.5倍)。光催化活性增强可归因于以下几点:(1)二维/二维BiOIO/BiOBr异质结构中的面对面紧密接触为光生载流子提供了更多迁移通道,有利于光生载流子的转移和分离;(2)Z型光载流子传输路径不仅加快了光载流子在空间中的分离和转移效率,还保持了较强的氧化还原能力;(3)IO₃⁻/I⁻氧化还原对和内建电场的存在进一步促进了光载流子的分离和转移,增强了复合材料的光催化活性。并且O₂、h⁺和·OH是活性物种,它们在Xe光照射下负责RhB的光降解过程。本研究为设计和制备高效含铋异质结提供了一种简便可靠的策略,表征和评价实验结果证明了其在太阳能利用和环境净化方面的有效性。