Beijing Key Lab for Source Control Technology of Water Pollution, College of Environmental Science and Engineering, Beijing Forestry University, Beijing 100083, China; Engineering Research Center for Water Pollution Source Control & Eco-remediation, College of Environmental Science and Engineering, Beijing Forestry University, Beijing 100083, China.
Beijing Key Lab for Source Control Technology of Water Pollution, College of Environmental Science and Engineering, Beijing Forestry University, Beijing 100083, China; Engineering Research Center for Water Pollution Source Control & Eco-remediation, College of Environmental Science and Engineering, Beijing Forestry University, Beijing 100083, China.
J Hazard Mater. 2022 Sep 5;437:129374. doi: 10.1016/j.jhazmat.2022.129374. Epub 2022 Jun 15.
Multi-wall carbon nanotubes (MWCNTs) with high electrical conductivity are commonly accounted as the ideal additives to enhance the charge surface migration efficiency in photocatalysis. Theoretically, the MWCNTs-modified binary photocatalysts have potential for the change of nanocrystal structure. Herein, we reports an adjustable {312}/{004}facet heterojunction MWCNTs/BiOI nanocomposite. Interestingly, the synergistic effect of {312}/{004}facet heterojunction and MWCNTs can effectively accelerate the spatial charge carriers transport. A novel {312}/{004}facet "S-scheme" pathway was proven to be the dominated pathway for the enhancement of spatial charge carriers. As a result, the MWCNTs-{312}/{004}BiOI composites exhibited superior photocatalytic oxidation efficiency for a representative antibiotics ofloxacin photodegradation. Density functional theory (DFT) calculation and LC-MS/MS analysis confirmed that the possible dealkylation and oxidation pathways could be found in OFL degradation. This work provides novel insights for the relationship between charge carrier transport and facet structure-property.
多壁碳纳米管(MWCNTs)具有高导电性,通常被认为是增强光催化中电荷表面迁移效率的理想添加剂。理论上,MWCNTs 修饰的二元光催化剂具有改变纳米晶体结构的潜力。在这里,我们报道了一种可调的{312}/{004}面异质结 MWCNTs/BiOI 纳米复合材料。有趣的是,{312}/{004}面异质结和 MWCNTs 的协同效应可以有效地加速空间电荷载流子的传输。证明了新型{312}/{004}面“ S 型”途径是增强空间电荷载流子的主要途径。结果,MWCNTs-{312}/{004}BiOI 复合材料在代表性抗生素氧氟沙星的光降解中表现出优异的光催化氧化效率。密度泛函理论(DFT)计算和 LC-MS/MS 分析证实,在 OFL 降解中可以找到可能的脱烷基化和氧化途径。这项工作为电荷载流子输运与面结构-性能之间的关系提供了新的见解。