1. A Hydrogen-Initiated Chemical Epitaxial Growth Strategy for In-Plane Heterostructured Photocatalyst
- Author
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Xinyuan Xu, Haijun Chen, Huayang Zhang, Shiyong Zhao, Liang Wang, Jean-Pierre Veder, Mingbo Wu, Gareth L. Nealon, Shaobin Wang, Lei Shi, Lai-Chang Zhang, Xiaoli Zhao, Hongqi Sun, Yunguo Li, Jinqiang Zhang, and Shuaijun Wang
- Subjects
Materials science ,Hydrogen ,Graphene ,General Engineering ,General Physics and Astronomy ,chemistry.chemical_element ,Heterojunction ,02 engineering and technology ,010402 general chemistry ,021001 nanoscience & nanotechnology ,Epitaxy ,7. Clean energy ,01 natural sciences ,0104 chemical sciences ,Catalysis ,law.invention ,chemistry.chemical_compound ,chemistry ,Chemical engineering ,law ,Photocatalysis ,General Materials Science ,0210 nano-technology ,Carbon nitride ,Photocatalytic water splitting - Abstract
Integrating carbon nitride with graphene into a lateral heterojunction would avoid energy loss within the interlaminar space region on conventional composites. To date, its synthesis process is limited to the bottom-up method which lacks the targeting and homogeneity. Herein, we proposed a hydrogen-initiated chemical epitaxial growth strategy at a relatively low temperature for the fabrication of graphene/carbon nitride in-plane heterostructure. Theoretical and experimental analysis proved that methane via in situ generation from the hydrogenated decomposition of carbon nitride triggered the graphene growth along the active sites at the edges of confined spaces. With the enhanced electrical field from the deposited graphene (0.5%), the performances on selective photo-oxidation and photocatalytic water splitting were promoted by 5.5 and 3.7 times, respectively. Meanwhile, a 7720 μmol/h/g(graphene) hydrogen evolution rate was acquired without any cocatalysts. This study provides an top-down strategy to synthesize in-plane catalyst for the utilization of solar energy.
- Published
- 2020
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