Issue 1, 2023

Highly efficient photocatalytic degradation over rose-like 1D/2D La(OH)3/(BiO)2OHCl heterostructures boosted by rich oxygen vacancies and enhanced interfacial charge transfer

Abstract

In this work, novel rose-like photocatalysts were successfully fabricated by constructing 1D/2D La(OH)3 nanorod/(BiO)2OHCl nanosheet heterojunctions. The optimal sample, BOL-2, synthesized with a Bi/La molar ratio of 4 : 1 showed significantly boosted visible-light-induced photocatalytic activity. Its kinetic rate constant (k) in the photocatalytic degradation of tetracycline (TC) and o-nitrophenol was 3.5 and 6.4 times that of (BiO)2OHCl. The existence of rich surface oxygen vacancies (OVs) and 1D/2D heterojunctions together contributes to enhanced photocatalytic performance. The OVs broadened the light absorption range and enhanced visible light absorbance, while the formation of the La(OH)3/(BiO)2OHCl heterojunction by close 1D/2D interface contact improved the charge separation and transfer efficiency of BOL-2. The free radical scavenging tests and DMPO spin-trapping technology further affirmed that more ˙O2 and ˙OH as active species were generated in the presence of BOL-2 than in the presence of (BiO)2OHCl, thereby leading to remarkably improved photocatalytic performance. BOL-2 also exhibited excellent stability in photocatalytic degradation, and the degradation efficiency only declined by 2.5% in the fourth cycle. Possible photocatalytic mechanisms as well as degradation pathways of TC over BOL-2 were explored. This work will provide new insights into the rational design of efficient photocatalysts by 1D/2D heterojunction construction and OV engineering for wastewater remediation.

Graphical abstract: Highly efficient photocatalytic degradation over rose-like 1D/2D La(OH)3/(BiO)2OHCl heterostructures boosted by rich oxygen vacancies and enhanced interfacial charge transfer

Supplementary files

Article information

Article type
Paper
Submitted
28 Aug 2022
Accepted
03 Dec 2022
First published
08 Dec 2022

Environ. Sci.: Nano, 2023,10, 215-228

Highly efficient photocatalytic degradation over rose-like 1D/2D La(OH)3/(BiO)2OHCl heterostructures boosted by rich oxygen vacancies and enhanced interfacial charge transfer

Y. Tan, Q. Zhou, W. Huang, K. Lu, K. Yang, X. Chen, D. Li and D. D. Dionysiou, Environ. Sci.: Nano, 2023, 10, 215 DOI: 10.1039/D2EN00792D

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