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February 6, 2026Catalysts0 citationsOpen Access

Wavelength Dependence of Plasmon-Driven Catalysis on Nanoporous Au-Ag Shells

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WYWenpeng YangWGWenguang GengGWGang Wang

Key Points

  • The central aim is to evaluate the wavelength dependence of plasmon-driven catalysis using nanoporous Au-Ag shells.
  • Prepared nanoporous Au-Ag shells via galvanic replacement process
  • Conducted catalytic reaction using p-nitrothiophenol to form 4,4′-dimercaptoazobenzene
  • Analyzed substrates including NPASs, Au NPs, and Ag NPs under 532 and 633 nm excitation
  • Utilized TEM, XRD, EDX, and HAADF-STEM for characterization
  • Applied in situ time-resolved SERS monitoring and kinetic fitting for rate assessment.
  • All substrates showed faster conversion rates under 532 nm excitation
  • Au NPs had the highest wavelength-selective factor of 15.0, indicating strong resonant matching
  • Ag NPs showed a factor of 2.3, while NPASs had the lowest at 1.7
  • The weak wavelength dependence in NPASs resulted from their broadband extinction and strong optical responses at both wavelengths.

Abstract

Plasmon-driven surface catalysis has attracted significant interest due to its capacity to integrate near-field enhancement and hot-carrier effects at the nanoscale synergistically. In this work, nanoporous Au-Ag shells (NPASs) were prepared via a galvanic replacement process. The coupling of p-nitrothiophenol (PNTP) to form 4,4′-dimercaptoazobenzene (DMAB) was used as a model reaction to evaluate plasmonic catalytic kinetics on three substrates, including NPASs, Au nanoparticles (Au NPs), and Ag nanoparticles (Ag NPs), under 532 and 633 nm excitation. TEM, XRD, EDX, and HAADF-STEM analyses confirmed that the NPASs exhibited a hollow nanoporous morphology and a homogeneous Au-Ag alloy structure. UV-Vis extinction spectroscopy revealed a broadband response in the visible region, with a main peak at ~683 nm and a shoulder at ~542 nm. Based on in situ time-resolved SERS monitoring and first-order kinetic fitting, all three substrates showed faster conversion rates under 532 nm excitation. To quantitatively assess wavelength selectivity, a wavelength-dependent factor (R = k532/k633) was introduced. Quantitative analysis demonstrated that Au NPs exhibited the most significant R value (15.0), followed by Ag NPs (2.3), whereas NPASs exhibited the smallest R value (1.7). This distinct difference indicated that the wavelength selectivity of monometallic Au NPs was primarily governed by the resonant matching between the LSPR and the incident wavelength. In contrast, the broadband extinction of NPASs enabled strong optical responses at both wavelengths, resulting in a significantly weaker wavelength dependence. This work provides essential experimental evidence for designing plasmonic catalytic substrates with improved wavelength adaptability.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/698585fe8f7c464f23009d9ahttps://doi.org/10.3390/catal16020166
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