Huang Guimei, Liu Lijun, Chen Lv, Gao Lingfeng, Zhu Junjiang, Fu Hongbo
Hubei Key Laboratory of Biomass Fibers and Eco-dyeing & Finishing, College of Chemistry and Chemical Engineering, Wuhan Textile University, Wuhan 430200, PR China.
Hubei Key Laboratory of Biomass Fibers and Eco-dyeing & Finishing, College of Chemistry and Chemical Engineering, Wuhan Textile University, Wuhan 430200, PR China.
J Hazard Mater. 2022 Feb 5;423(Pt B):127134. doi: 10.1016/j.jhazmat.2021.127134. Epub 2021 Sep 10.
Internal electric field (IEF) at heterojunction interfaces can separate photoexcited charge carriers and promote photocatalytic performance. Here we have modified WO nanoplates with carbon dots (CDs) and constructed an interfacial IEF directing from CDs to WO with assistance of their remarkably different work functions. Such electric field drove photoexcited electrons to transport towards CDs and retained photoexcited holes to stay at WO, achieving electron/hole spatial separation. HO preferred chemisorption on the five-coordinated W atoms of WO with an elongated H-O bond and bent H-O-H angle, which allowed the activation of HO and favorable production of ·OH radicals. The WO/CDs (WC1) showed a superior photocatalytic activity for visible-light photooxidation of HCHO and CHCOCH with CO production rate of 411 and 188 μmol g h, respectively, outperforming most of WO-based photocatalysts. The enhanced photocatalytic performance correlated with the IEF-induced charge separation, favorable ·OH production and VOCs chemisorption. Our work confirms the role of CDs cocatalyst in the photocatalytic oxidation of VOCs, which will inspire enthusiasm to develop more advanced heterojunction photocatalysts involving carbon nanomaterials.
异质结界面处的内电场(IEF)可分离光激发电荷载流子并提高光催化性能。在此,我们用碳点(CDs)修饰了WO纳米片,并借助它们显著不同的功函数构建了一个从CDs指向WO的界面IEF。这种电场驱动光激发电子向CDs传输,并使光激发空穴保留在WO上,实现了电子/空穴的空间分离。羟基自由基(·OH)更倾向于化学吸附在WO中具有拉长的H-O键和弯曲的H-O-H角的五配位W原子上,这使得·OH得以活化并有利于产生·OH自由基。WO/CDs(WC1)对HCHO和CH₃COCH₃的可见光光氧化表现出优异的光催化活性,CO生成速率分别为411和188 μmol g⁻¹ h⁻¹,优于大多数基于WO的光催化剂。增强的光催化性能与IEF诱导的电荷分离、有利的·OH生成和挥发性有机化合物(VOCs)化学吸附有关。我们的工作证实了CDs助催化剂在VOCs光催化氧化中的作用,这将激发人们开发更多涉及碳纳米材料的先进异质结光催化剂的热情。