Fabrication of novel AgIO4/SnO2 heterojunction for photocatalytic hydrogen production through direct Z-scheme mechanism
Author:
Publisher
Elsevier BV
Subject
General Physics and Astronomy,General Chemical Engineering,General Chemistry
Reference35 articles.
1. Photocatalytic enhancement of hydrogen production in water splitting under simulated solar light by band gap engineering and localized surface plasmon resonance of ZnxCd1-xS nanowires decorated by Au nanoparticles;Chen;Nano Energy,2020
2. Metal chalcogenide based photocatalysts decorated with heteroatom doped reduced graphene oxide for photocatalytic and photoelectrochemical hydrogen production;Akyüz;Int. J. Hydrogen Energy,2019
3. Salt templated synthesis of NiO/TiO2 supported carbon nanosheets for photocatalytic hydrogen production;Zhao;Colloids Surf.,2020
4. The 2D RGO-NiS2 dual co-catalyst synergistic modified g-C3N4 aerogel towards enhanced photocatalytic hydrogen production;Pan;Int. J. Hydrogen Energy,2019
5. Ordered mesoporous CeO2/ZnO composite with photodegradation concomitant photocatalytic hydrogen production performance;Xiao;J. Solid State,2019
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