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Plasmon-enhanced photocatalysis using gold nanoparticles encapsulated in nanoscale molybdenum oxide shell. | LitMetric

Plasmon-enhanced photocatalysis using gold nanoparticles encapsulated in nanoscale molybdenum oxide shell.

Nanotechnology

College of Biological, Chemical Sciences and Engineering & Nanotechnology Research Institute, Jiaxing University, Jiaxing, Zhejiang Province, 314001, People's Republic of China.

Published: February 2023

AI Article Synopsis

  • Using plasmonic nanoparticles, specifically Au@MoONPs, can enhance chemical reactions powered by solar energy.
  • The synthesis of these nanoparticles involved a simple wet-chemistry method, which allowed for strong light absorption and improved catalysis.
  • Testing showed that these nanoparticles significantly sped up the conversion of 4-nitrophenol to 4-aminophenol under visible light, demonstrating their effectiveness in catalyzing organic transformations.

Article Abstract

Using solar energy to enhance the transformation rate of organic molecules is a promising strategy to advance chemical synthesis and environmental remediation. Plasmonic nanoparticles responsive to sunlight show great promise in the catalysis of chemical reactions. In this work, we used a straightforward wet-chemistry method to synthesize plasmonic octahedral gold nanoparticles (NPs) coated with thin molybdenum oxide (MoO), Au@MoONPs, which exhibited strong surface plasmon resonance in a broad wavelength range. The synthesized Au@MoONPs were characterized by UV-vis, SEM, TEM, EDS, XPS, and the electrochemical technique of cyclic voltammetry (CV). The catalytic performance of Au@MoONPs under visible light irradiation was investigated using the reduction of 4-nitrophenol (4-NP) to 4-aminophenol (4-AP) as a model reaction. The presence of a thin capping layer of MoOon our Au NPs contributed to the broadening of their range of absorption of visible light, resulting in a stronger intra-particle plasmonic resonance and the modulation of surface energy and electronic state. Accordingly, the kinetics of plasmon photocatalytic transformation of 4-NP to 4-AP was significantly accelerated (by a factor of 8.1) under visible light, compared to uncapped Au NPs in the dark. Our as-synthesized Au@MoONPs is an example that the range of plasmonic wavelengths of NPs can be effectively broadened by coating them with another plasmon-active (semiconducting) material, which substantially improves their plasmonic photocatalytic performance. Meanwhile, the synthesized Au@MoONPs can be used to accelerate the transformation of organic molecules under visible light irradiation.

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Source
http://dx.doi.org/10.1088/1361-6528/acb444DOI Listing

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