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Urea-Modified Carbon Nitrides: Enhancing Photocatalytic Hydrogen Evolution by Rational Defect Engineering

Publication ,  Journal Article
Lau, VWH; Yu, VWZ; Ehrat, F; Botari, T; Moudrakovski, I; Simon, T; Duppel, V; Medina, E; Stolarczyk, JK; Feldmann, J; Blum, V; Lotsch, BV
Published in: Advanced Energy Materials
June 21, 2017

The primary amine groups on the heptazine-based polymer melon, also known as graphitic carbon nitride (g-C3N4), can be replaced by urea groups using a two-step postsynthetic functionalization. Under simulated sunlight and optimum Pt loading, this urea-functionalized carbon nitride has one of the highest activities among organic and polymeric photocatalysts for hydrogen evolution with methanol as sacrificial donor, reaching an apparent quantum efficiency of 18% and nearly 30 times the hydrogen evolution rate compared to the nonfunctionalized counterpart. In the absence of Pt, the urea-derivatized material evolves hydrogen at a rate over four times that of the nonfunctionalized one. Since “defects” are conventionally accepted to be the active sites in graphitic carbon nitride for photocatalysis, the work here is a demonstrated example of “defect engineering,” where the catalytically relevant defect is inserted rationally for improving the intrinsic, rather than extrinsic, photocatalytic performance. Furthermore, the work provides a retrodictive explanation for the general observation that g-C3N4 prepared from urea performs better than those prepared from dicyandiamide and melamine. In-depth analyses of the spent photocatalysts and computational modeling suggest that inserting the urea group causes a metal-support interaction with the Pt cocatalyst, thus facilitating interfacial charge transfer to the hydrogen evolving centers.

Duke Scholars

Published In

Advanced Energy Materials

DOI

EISSN

1614-6840

ISSN

1614-6832

Publication Date

June 21, 2017

Volume

7

Issue

12

Related Subject Headings

  • 4016 Materials engineering
  • 3403 Macromolecular and materials chemistry
  • 0915 Interdisciplinary Engineering
  • 0912 Materials Engineering
  • 0303 Macromolecular and Materials Chemistry
 

Citation

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MLA
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Lau, V. W. H., Yu, V. W. Z., Ehrat, F., Botari, T., Moudrakovski, I., Simon, T., … Lotsch, B. V. (2017). Urea-Modified Carbon Nitrides: Enhancing Photocatalytic Hydrogen Evolution by Rational Defect Engineering. Advanced Energy Materials, 7(12). https://doi.org/10.1002/aenm.201602251
Lau, V. W. H., V. W. Z. Yu, F. Ehrat, T. Botari, I. Moudrakovski, T. Simon, V. Duppel, et al. “Urea-Modified Carbon Nitrides: Enhancing Photocatalytic Hydrogen Evolution by Rational Defect Engineering.” Advanced Energy Materials 7, no. 12 (June 21, 2017). https://doi.org/10.1002/aenm.201602251.
Lau VWH, Yu VWZ, Ehrat F, Botari T, Moudrakovski I, Simon T, et al. Urea-Modified Carbon Nitrides: Enhancing Photocatalytic Hydrogen Evolution by Rational Defect Engineering. Advanced Energy Materials. 2017 Jun 21;7(12).
Lau, V. W. H., et al. “Urea-Modified Carbon Nitrides: Enhancing Photocatalytic Hydrogen Evolution by Rational Defect Engineering.” Advanced Energy Materials, vol. 7, no. 12, June 2017. Scopus, doi:10.1002/aenm.201602251.
Lau VWH, Yu VWZ, Ehrat F, Botari T, Moudrakovski I, Simon T, Duppel V, Medina E, Stolarczyk JK, Feldmann J, Blum V, Lotsch BV. Urea-Modified Carbon Nitrides: Enhancing Photocatalytic Hydrogen Evolution by Rational Defect Engineering. Advanced Energy Materials. 2017 Jun 21;7(12).
Journal cover image

Published In

Advanced Energy Materials

DOI

EISSN

1614-6840

ISSN

1614-6832

Publication Date

June 21, 2017

Volume

7

Issue

12

Related Subject Headings

  • 4016 Materials engineering
  • 3403 Macromolecular and materials chemistry
  • 0915 Interdisciplinary Engineering
  • 0912 Materials Engineering
  • 0303 Macromolecular and Materials Chemistry