Grégory Savorianakis, Cédric Rousseau, Anastasiya Sergievskaya, Gilles Rosolen, Michel Voué, Bjorn Maes, S. Konstantinidis
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Two platforms are developed: a VO<sub>2</sub> thin film with a monolayer of NPs and a configuration with NPs between two VO<sub>2</sub> films. The temperature-dependent plasmonic response of these platforms is measured by extinction spectroscopy, showing a significant wavelength resonance shift of approximately 10 nm for the first platform and 20 nm for the second. Optical simulations analyze this shift over various geometries, from isolated NPs to fully covered NPs, achieving a 60 nm shift for NPs embedded in a thin VO<sub>2</sub> film. This study demonstrates an effective approach to synthesizing thermochromic VO<sub>2</sub> coatings with gold NPs, offering insights into the plasmonic properties of hybrid platforms.</p>","PeriodicalId":115,"journal":{"name":"Advanced Materials Interfaces","volume":"11 28","pages":""},"PeriodicalIF":4.3000,"publicationDate":"2024-08-27","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1002/admi.202400172","citationCount":"0","resultStr":"{\"title\":\"Plasmonic Resonance Shifts in Gold Nanoparticles-Thermochromic VO2 Thin Film Hybrid Platforms: A Joint Experimental and Numerical Study\",\"authors\":\"Grégory Savorianakis, Cédric Rousseau, Anastasiya Sergievskaya, Gilles Rosolen, Michel Voué, Bjorn Maes, S. Konstantinidis\",\"doi\":\"10.1002/admi.202400172\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>The combination of the phase transition in thermochromic vanadium dioxide (VO<sub>2</sub>) with plasmonic nanoparticles paves the way for applications in various fields, including optical sensing, advanced coatings, and dynamic optical devices. This study presents a simple fabrication method to control both the size and surface coverage of NPs combined with VO<sub>2</sub>. First, a thermochromic VO<sub>2</sub> coating with a phase transition at 68 °C is synthesized using reactive magnetron sputtering. Then, monodisperse 30 nm diameter gold NPs are bonded to the VO<sub>2</sub> surface using (3-aminopropyl)trimethoxysilane (APTMS) linkers, examining the effect of immersion duration on surface coverage. Two platforms are developed: a VO<sub>2</sub> thin film with a monolayer of NPs and a configuration with NPs between two VO<sub>2</sub> films. 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Plasmonic Resonance Shifts in Gold Nanoparticles-Thermochromic VO2 Thin Film Hybrid Platforms: A Joint Experimental and Numerical Study
The combination of the phase transition in thermochromic vanadium dioxide (VO2) with plasmonic nanoparticles paves the way for applications in various fields, including optical sensing, advanced coatings, and dynamic optical devices. This study presents a simple fabrication method to control both the size and surface coverage of NPs combined with VO2. First, a thermochromic VO2 coating with a phase transition at 68 °C is synthesized using reactive magnetron sputtering. Then, monodisperse 30 nm diameter gold NPs are bonded to the VO2 surface using (3-aminopropyl)trimethoxysilane (APTMS) linkers, examining the effect of immersion duration on surface coverage. Two platforms are developed: a VO2 thin film with a monolayer of NPs and a configuration with NPs between two VO2 films. The temperature-dependent plasmonic response of these platforms is measured by extinction spectroscopy, showing a significant wavelength resonance shift of approximately 10 nm for the first platform and 20 nm for the second. Optical simulations analyze this shift over various geometries, from isolated NPs to fully covered NPs, achieving a 60 nm shift for NPs embedded in a thin VO2 film. This study demonstrates an effective approach to synthesizing thermochromic VO2 coatings with gold NPs, offering insights into the plasmonic properties of hybrid platforms.
期刊介绍:
Advanced Materials Interfaces publishes top-level research on interface technologies and effects. Considering any interface formed between solids, liquids, and gases, the journal ensures an interdisciplinary blend of physics, chemistry, materials science, and life sciences. Advanced Materials Interfaces was launched in 2014 and received an Impact Factor of 4.834 in 2018.
The scope of Advanced Materials Interfaces is dedicated to interfaces and surfaces that play an essential role in virtually all materials and devices. Physics, chemistry, materials science and life sciences blend to encourage new, cross-pollinating ideas, which will drive forward our understanding of the processes at the interface.
Advanced Materials Interfaces covers all topics in interface-related research:
Oil / water separation,
Applications of nanostructured materials,
2D materials and heterostructures,
Surfaces and interfaces in organic electronic devices,
Catalysis and membranes,
Self-assembly and nanopatterned surfaces,
Composite and coating materials,
Biointerfaces for technical and medical applications.
Advanced Materials Interfaces provides a forum for topics on surface and interface science with a wide choice of formats: Reviews, Full Papers, and Communications, as well as Progress Reports and Research News.