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Understanding the roles of plasmonic Au nanocrystal size, shape, aspect ratio and loading amount in Au/g-C3N4 hybrid nanostructures for photocatalytic hydrogen generation.

Authors :
Guo, Yanzhen
Jia, Henglei
Yang, Jianhua
Yin, Hang
Yang, Zhi
Wang, Jianfang
Yang, Baocheng
Source :
Physical Chemistry Chemical Physics (PCCP); 9/14/2018, Vol. 20 Issue 34, p22296-22307, 12p
Publication Year :
2018

Abstract

Hybrid photocatalysts containing plasmonic metal and semiconductor building blocks can alleviate charge carrier recombination and broaden the range of light absorption of the semiconductor. In this work, plasmonic Au nanocrystals of different sizes and shapes (spheres and rods) are attached on graphitic carbon nitride (g-C<subscript>3</subscript>N<subscript>4</subscript>) nanosheets through electrostatic attraction. The effects of the morphology and loading amount of the Au nanocrystals are carefully studied for understanding and optimizing the hybrid photocatalysts. The optimized 18 nm-sized Au nanospheres/g-C<subscript>3</subscript>N<subscript>4</subscript> photocatalyst exhibits a superior activity for H<subscript>2</subscript> evolution at a rate of 540 μmol g<superscript>−1</superscript> h<superscript>−1</superscript> under visible light (λ > 420 nm), exceeding those produced over larger-sized Au nanospheres/g-C<subscript>3</subscript>N<subscript>4</subscript>, Au nanorods/g-C<subscript>3</subscript>N<subscript>4</subscript> and photodeposited Au nanoparticles/g-C<subscript>3</subscript>N<subscript>4</subscript> photocatalysts. The excellent activity for H<subscript>2</subscript> evolution is attributed to the electron sink and plasmonic effects of the Au nanocrystals in different spectral regions, as evidenced by photocurrent measurements. The introduced plasmonic Au nanocrystals not only enhance the photocatalytic activity, but they also endow the hybrid photocatalysts with an extended light absorption range. Our results and understanding will be useful for the design of efficient plasmonic photocatalysts for solar to fuel energy conversion as well as for other plasmon-driven chemical reactions. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14639076
Volume :
20
Issue :
34
Database :
Complementary Index
Journal :
Physical Chemistry Chemical Physics (PCCP)
Publication Type :
Academic Journal
Accession number :
131494660
Full Text :
https://doi.org/10.1039/c8cp04241a