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Superior photocatalytic performance of a novel flower-like Bi24Si2O40-Bi2O2SiO3 composite via organic-guided crystal growth and bandgap regulation.

Authors :
Shi, Yongsheng
Xu, Shuming
Wu, Yuanting
Han, Lin
Guan, Mengyao
Liu, Qiujun
Source :
Optical Materials. Jan2023, Vol. 135, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Aurivillius oxide layered materials are formed by bismuth oxide and pseu-do-perovskite layers, which usually presents a mica-like lamellar structure, that is easy to stack with each other, affecting the exposure of active sites, thereby reducing its photocatalytic performance. Herein, the organic modifier is used to adjust the morphology to obtain Bi 24 Si 2 O 40 -Bi 2 O 2 SiO 3 (BSO) with three-dimensional flower-like structure. Furthermore, the optimization of morphology promotes the effective formation of heterostructures, organic-mediated morphology growth and the regulation of heterojunction effectively improves the activity of superoxide radicals (•O 2 −) and holes (h+). Therefore, the organic-modified MBSO-2 shows excellent photocatalytic performance, and its degradation rates of rhodamine B (RhB), ciprofloxacin (CIP) and norfloxacin (NOR) can reach 98.7%, 87.4% and 89.0%, respectively. Moreover, the great improvement of the degradation of RhB and NOR by MBSO-2 can be attributed to the important role played by its active species (h+ and •O 2 −), which shows that it is more conducive to improving the degradation of pollutants with h+ and •O 2 − as the degradation path. The modification strategy of organic-mediated lamellar growth provides a new idea for the morphology control of layered metal oxide photocatalysts and broadens its application. • Flower-like BSO is controlled via complex with organic and assistance of hydroxyl. • The change of the active species adjusts the degradation path of the photocatalyst. • The as-prepared MBSO-2 can effectively degrade different pollutants. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09253467
Volume :
135
Database :
Academic Search Index
Journal :
Optical Materials
Publication Type :
Academic Journal
Accession number :
161343622
Full Text :
https://doi.org/10.1016/j.optmat.2022.113346