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Defective WO3 nanoplates controllably decorated with MIL-101(Fe) nanoparticles to efficiently remove tetracycline hydrochloride by S-scheme mechanism.

Authors :
Yang, Hao
Zhao, Ze-Cong
Yang, Yan-Ping
Zhang, Zhu
Chen, Wei
Yan, Rui-Qiang
Jin, Yanxian
Zhang, Jian
Source :
Separation & Purification Technology. Nov2022, Vol. 300, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

• S-scheme MIL-101(Fe)/WO 3 heterojunction has been prepared successfully. • The as-prepared heterojunction shows a superior photocatalytic degradation activity. • The S-scheme photocatalytic mechanism is well verified. • h+ is main active radical in photodegradation over MIL-101(Fe)/WO 3 heterojunction. Here, a series of S-scheme hybrid MIL-101(Fe)/WO 3 samples were designed and prepared by tightly immobilizing MIL-101(Fe) nanoparticles on the surface of WO 3 nanoplates via a simple solvothermal reaction. The in situ loading of MIL-101(Fe) promoted charge separation because of the successful construction of the S-scheme, significantly enhancing the photocatalytic activity to efficiently remove tetracycline hydrochloride (TCH). This smart structural design endowed the synthetic MIL-101(Fe)/WO 3 hybrid sample with highly efficient visible light-driven photocatalytic activity and good photostability. The optimized MIL-101(Fe)/WO 3 (1:1) hybrid photocatalyst exhibited the highest photocatalytic efficiency with a photodegradation efficiency of up to 93.8%. Dissimilar to certain reports, the photocatalytic activity over hybrid MIL-101(Fe)/WO 3 samples was majorly driven by photogenerated holes (h+). In addition, the S-scheme photocatalytic mechanism was fully demonstrated by systematic characterizations including active species capture experiments and electron paramagnetic resonance analyses. This study sheds light on the design and synthesis of S-scheme hybrid photocatalysts for highly efficient applications of photocatalysis for removing TCH. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13835866
Volume :
300
Database :
Academic Search Index
Journal :
Separation & Purification Technology
Publication Type :
Academic Journal
Accession number :
158744114
Full Text :
https://doi.org/10.1016/j.seppur.2022.121846