研究目的
Investigating the enhancement of electrochemical reactions in the visible-NIR region through plasmonic hot electron transfer in anisotropic Pt–Au nanodisks.
研究成果
Anisotropic Pt-edged Au nanodisks significantly enhance electrochemical reactions in the visible-NIR region through plasmonic hot electron transfer. The DSPR mode is identified as the main channel for hot electron transfer, leading to a three-fold increase in electric current under visible-NIR light irradiation compared to dark conditions. This work demonstrates the potential of bimetallic structures in promoting plasmon-induced hot hole–electron separation for enhanced photoelectrocatalytic reactions.
研究不足
The study focuses on the visible-NIR region and the specific application of methanol oxidation. The mechanisms of SPR-induced hot electron generation and transfer are complex and may vary under different conditions or with other materials.
1:Experimental Design and Method Selection:
Synthesis of anisotropic Pt-edged Au nanodisks by controlling the preferential loading of Pt on the edges of Au nanodisks. Use of these nanodisks as catalysts for plasmon-enhanced electrochemical methanol oxidation reactions (MORs) under visible-NIR light irradiation.
2:Sample Selection and Data Sources:
Au triangular nanoprisms were synthesized as precursors, and uniform nanodisks were obtained through a wet chemical etching method. Pt was preferentially overgrown on the edges of the Au nanodisks.
3:List of Experimental Equipment and Materials:
Transmission electron microscope (TEM, JEOL, 2100), UV-Vis-NIR spectrophotometer, ICP-AES device (iCAP6500Duo, ThermoFisher), electrochemical workstation (CHI 760E), xenon lamp (300 W) equipped with a UV cut–off filter (>420 nm), Olympus IX71 inverted fluorescence microscope coupled with an objective scanning confocal microscope system (PicoQuant, MicroTime 200).
4:0). Experimental Procedures and Operational Workflow:
4. Experimental Procedures and Operational Workflow: Synthesis of Au NDs and Pt-edged Au NDs, photoelectrochemical methanol oxidation reaction measurements, single-particle PL measurements.
5:Data Analysis Methods:
Analysis of TEM images, optical extinction spectra, electrochemical measurements, and single-particle PL spectra and images.
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Oil-immersion objective lens
UplanSApochromat, 100×, 1.4NA
Olympus
Excitation of the samples.
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Transmission electron microscope
2100
JEOL
Measurement of the morphologies of the samples.
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ICP-AES device
iCAP6500Duo
ThermoFisher
Measurement of the mass concentrations of gold and platinum.
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UV-Vis-NIR spectrophotometer
Cary Series
Recording of optical extinction spectra.
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Electrochemical workstation
CHI 760E
Study of the photoelectrocatalytic reaction.
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Xenon lamp
300 W
Supply of visible-NIR light.
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Olympus IX71 inverted fluorescence microscope
Olympus
Measurement of PL spectra and images of the samples at the single-particle level.
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Single photon avalanche photodiode
PDM 50CT
Detection of the emissions of the samples.
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Imaging spectrograph
SP-2356
Acton Research
Collection of the PL spectra.
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