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Tuning interfacial charge transfer for efficient visible-light-driven photodegradation and simultaneous H2 evolution.

Authors :
Li, Zhiyang
Chen, Yaogang
Zhang, Yinghe
Ai, Wei
Lei, Qian
Yao, Tingjun
Zhong, Dan
Liu, Wenjie
Jin, Wenbiao
Yang, Lei
Source :
Journal of Materials Science & Technology; Jan2024, Vol. 168, p35-49, 15p
Publication Year :
2024

Abstract

• A novel edge-graphitized ZnO/C 3 N 4 -C g heterojunction was synthesized. • The favorable band-bending structure enhances interfacial charge transfer. • ZnO/C 3 N 4 -C g exhibited enhanced photodegradation and H 2 evolution. • The ZCN/PMS system has satisfactory adaptability in complex aqueous matrices. • Eco-friendly nature of ZCN/PMS system showed no biotoxicity after treatment. The edge-graphitized carbon nitride (C 3 N 4 C g) was prepared by secondary pyrolysis to construct ZnO/C 3 N 4 C g (ZCN) type-Ⅱ heterojunction photocatalyst via a facile sonication dispersion method, which achieved ∼7.04-fold and ∼18.3-fold enhanced visible-light-driven photocatalytic performance for refractory micropollutant removal and simultaneous hydrogen (H 2) evolution respectively compared to conventional ZnO/g-C 3 N 4 Step-scheme heterojunction. The apparent quantum efficiency of the ZCN 0.4 heterojunction reaches 0.92% (λ = 420 nm). Such excellent performance stems from that the edge-graphene moieties stitched onto the interface of heterojunction extend light absorption to the full visible spectrum, meanwhile, the built-in electric field generated during Fermi level alignment accompanying favorable band-bending structure provides an effective pathway for the rapid migration of photoinduced electrons via the edge graphene channel to improve interfacial charge separation efficiency. Interestingly, the midgap states introduced in ZCN heterojunction could temporarily retain photoexcited electrons to effectively inhibit the in situ carrier recombination for improved photocatalytic H 2 evolution. Moreover, ZCN/peroxymonosulfate system exhibited excellent anti-interference performance against complex water bodies under visible illumination due to the synergistic effect between the co-existing anions and organic matter. Meanwhile, the eco-friendly nature of the ZCN/peroxymonosulfate system showed no biotoxicity of reaction filtrate on cell proliferation after treatment, which avoided secondary contamination. Considering the outstanding performance in photocatalysis, the ZCN system exhibits broad potential for practical applications in water pollution control and green energy production. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10050302
Volume :
168
Database :
Supplemental Index
Journal :
Journal of Materials Science & Technology
Publication Type :
Periodical
Accession number :
172870835
Full Text :
https://doi.org/10.1016/j.jmst.2023.05.033