光催化
异质结
硫脲
材料科学
可见光谱
电子顺磁共振
兴奋剂
载流子
光降解
催化作用
化学工程
纳米技术
光电子学
化学
有机化学
工程类
物理
核磁共振
作者
Tingfang Xie,Shaodong Sun,Zhenzhen Shi,Jiayu Zhang,Man Yang,Jie Cui,Bian Yang
标识
DOI:10.1016/j.mtchem.2023.101869
摘要
In order to effectively address the global environmental issue and energy crisis, developing a satisfying photocatalyst with high solar response and efficient carrier separation efficiency is promising and still challenging. In this study, a feasible and effective strategy from the perspective of multi-scale regulation that integrating element doping and heterostructure construction as well as morphology control is used to improve the degradation efficiency in antibiotic removal. A Sn4+ doped BiOCl (BOC–Sn) integrated Sn-doped WO3 (WO3–Sn) photocatalyst with propelling photocatalytic degradation for tetracycline (TC) was fabricated via one-pot thiourea-assisted hydrothermal method and as-obtained catalysts were denoted as (BOC–WO)–Sn-Tux (x is the molar amount of thiourea in the synthesis). By regulating the content of thiourea, the optimized (BOC–WO)–Sn-Tu1 photocatalyst exhibits ultrafine grain size, expanded visible-light response and fast carrier transport. Driven by visible light, the TC dissociation rate mediated by (BOC–WO)–Sn-Tu1 surpassed that of BOC-WOwith a photodegradation rate constant k-value 5.75 times higher than that of WO3–Sn. Analysis of energy band configuration in the BOC-Sn and WO3–Sn photocatalyst suggests that these modifications can effectively promote the photocarriertransport with type-II at the heterojunction interfaces and passivate trap sites that reside within the (BOC–WO)–Sn-Tu1 catalysts. Benefited from the stronger reduction potential, •O2− with high yield acts as the crucial active species in the photocatalytic reaction system verified by the trapping experiments and electron paramagnetic resonance (EPR) spectra detection. This work opens a new route in designing an effective photocatalytic system by integrating element doping and heterostructure construction as well as morphology regulation for environmental remediation.
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