Cd 3 (C 3 N 3 S 3 ) 2 coordination polymer/graphene nanoarchitectures for enhanced photocatalytic H 2 O 2 production under visible light

For a long time, there has been global concern over the environment and energy problems. Recently, the problems, which have brought about serious effect on the global living condition, have been in the "spotlight" and given impetus to the universal's efforts to head for the same direc...

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Veröffentlicht in:Science bulletin 2017-05, Vol.62 (9), p.610
Hauptverfasser: Xu, Jie, Chen, Zhenye, Zhang, Hongwen, Lin, Guibin, Lin, Huaxiang, Wang, Xuxu, Long, Jinlin
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container_issue 9
container_start_page 610
container_title Science bulletin
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creator Xu, Jie
Chen, Zhenye
Zhang, Hongwen
Lin, Guibin
Lin, Huaxiang
Wang, Xuxu
Long, Jinlin
description For a long time, there has been global concern over the environment and energy problems. Recently, the problems, which have brought about serious effect on the global living condition, have been in the "spotlight" and given impetus to the universal's efforts to head for the same direction: stem the worst warming and strive for the renewable energy source. Hydrogen peroxide (H O ) is undoubtedly a good choice, which holds the promise as a clean, efficient, safe and transferrable energy carrier. Octahedral coordination polymer, Cd (C N S ) , was found to be a robust photocatalyst for H O generation under visible light irradiation. To further improve the H O generation efficiency, adhering the octahedron to reduced graphene (rGO) was applied as the strategy herein. The study shows that by adhering Cd (C N S ) to rGO, the formation of H O is 2.5-fold enhanced and its deformation is concurrently suppressed. This work not only demonstrates the effectiveness of adhering Cd (C N S ) polymer to rGO for the improvement of the polymer's photocatalytic performance, but also proposes a general way for the fabrication of graphene/coordination compound hybrids for maximizing their synergy.
doi_str_mv 10.1016/j.scib.2017.04.013
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title Cd 3 (C 3 N 3 S 3 ) 2 coordination polymer/graphene nanoarchitectures for enhanced photocatalytic H 2 O 2 production under visible light
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