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  4. Metal-free photoanodes for C–H functionalization
 
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Metal-free photoanodes for C–H functionalization

Publikationstyp
Journal Article
Date Issued
2023-12-01
Sprache
English
Author(s)
Zhang, Junfang  
Zhu, Yuntao
Christian, Njel  
Liu, Yuxin  
Dallabernardina, Pietro  
Stevens, Molly M.  
Seeberger, Peter H.  
Savateev, Oleksandr  
Loeffler, Felix F.  
TORE-URI
https://hdl.handle.net/11420/59390
Journal
Nature communications  
Volume
14
Issue
1
Article Number
7104
Citation
Nature Communications 14 (1): 7104 (2023)
Publisher DOI
10.1038/s41467-023-42851-w
Scopus ID
2-s2.0-85175809847
Organic semiconductors, such as carbon nitride, when employed as powders, show attractive photocatalytic properties, but their photoelectrochemical performance suffers from low charge transport capability, charge carrier recombination, and self-oxidation. High film-substrate affinity and well-designed heterojunction structures may address these issues, achieved through advanced film generation techniques. Here, we introduce a spin coating pretreatment of a conductive substrate with a multipurpose polymer and a supramolecular precursor, followed by chemical vapor deposition for the synthesis of dual-layer carbon nitride photoelectrodes. These photoelectrodes are composed of a porous microtubular top layer and an interlayer between the porous film and the conductive substrate. The polymer improves the polymerization degree of carbon nitride and introduces C-C bonds to increase its electrical conductivity. These carbon nitride photoelectrodes exhibit state-of-the-art photoelectrochemical performance and achieve high yield in C-H functionalization. This carbon nitride photoelectrode synthesis strategy may be readily adapted to other reported processes to optimize their performance.
DDC Class
600: Technology
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