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Long-Term Plasmonic Stability of Copper Nanoparticles Produced by Gas-Phase Aggregation Method Followed by UV-Ozone Treatment

Francesco Zamboni, Arūnė Makarevičiūtė, Vladimir N. Popok

2022Applied Nano15 citationsDOIOpen Access PDF

Abstract

Coinage metal nanoparticles (NPs) are well-known for the phenomenon of localized surface plasmon resonance (LSPR), which is widely utilized for enhanced sensing and detection. LSPR stability over time is an important issue for the practical application of nanoparticle matrices. Some metals, and copper among those, are chemically reactive in ambient atmospheric conditions that leads to degradation of plasmonic functionality. This work reports on the formation of Cu NP matrices utilizing magnetron-sputtering gas-phase aggregation, size-selection and soft-landing on a substrate. This method provides monocrystalline NPs with high purity, thus, improving chemical inertness towards ambient gases, for example, oxygen. Additionally, a simple approach of UV-ozone treatment is shown to form an oxide shell protecting the metallic core against reactions with environmental species and stabilizing the plasmonic properties for a period of over 150 days. The suggested methodology is promising to improve the competitiveness of Cu nano-matrices with those of Au and Ag in plasmonic sensing and detection.

Topics & Concepts

NanoparticlePlasmonSurface plasmon resonanceCopperMaterials sciencePlasmonic nanoparticlesOzoneOxideChemical stabilityChemical engineeringNanotechnologyChemistryOptoelectronicsMetallurgyOrganic chemistryEngineeringGold and Silver Nanoparticles Synthesis and ApplicationsPlasmonic and Surface Plasmon Research
Long-Term Plasmonic Stability of Copper Nanoparticles Produced by Gas-Phase Aggregation Method Followed by UV-Ozone Treatment | Litcius