Rational design of carbon nitride photocatalysts by identification of cyanamide defects as catalytically relevant sites
Рациональный дизайн фотокатализаторов на основе нитрида углерода посредством выявления дефектов цианамида как каталитически активных центров
2016-07-08
SCID: 54.1/fue992cs
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carbon nitride photocatalystscharge carrier separationcyanamide defectsheptazine-based polymerhydrogen evolution
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Abstract (AI)
The heptazine-based polymer melon (also known as graphitic carbon nitride, g-C3N4) is a promising photocatalyst for hydrogen evolution. Nonetheless, attempts to improve its inherently low activity are rarely based on rational approaches because of a lack of fundamental understanding of its mechanistic operation. Here we employ molecular heptazine-based model catalysts to identify the cyanamide moiety as a photocatalytically relevant 'defect'. We exploit this knowledge for the rational design of a carbon nitride polymer populated with cyanamide groups, yielding a material with 12 and 16 times the hydrogen evolution rate and apparent quantum efficiency (400 nm), respectively, compared with the unmodified melon. Computational modelling and material characterization suggest that this moiety improves coordination (and, in turn, charge transfer kinetics) to the platinum co-catalyst and enhances the separation of the photogenerated charge carriers. The demonstrated knowledge transfer for rational catalyst design presented here provides the conceptual framework for engineering high-performance heptazine-based photocatalysts.
Key Findings
1
Computational modelling and characterization indicate that cyanamide groups improve platinum co-catalyst coordination and charge-transfer kinetics.
2
Cyanamide groups enhance separation of photogenerated charge carriers, contributing to improved photocatalytic performance.
3
Molecular heptazine-based model catalysts identify cyanamide groups as photocatalytically relevant defects in melon (graphitic carbon nitride).
4
Rational incorporation of cyanamide groups into carbon nitride produces a material with 12-fold higher hydrogen evolution and 16-fold higher apparent quantum efficiency at 400 nm than unmodified melon.
5
The study establishes knowledge transfer from molecular models to polymer design as a framework for engineering high-performance heptazine-based photocatalysts.
Research Object
Cyanamide-functionalized heptazine-based carbon nitride polymer (melon/g-C3N4) photocatalysts for hydrogen evolution
Research Subject
The effects of cyanamide defects on platinum coordination, photogenerated charge-carrier separation, charge-transfer kinetics, and hydrogen-evolution performance
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2016-07-08
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