Modeling Interband Transitions in Silver Nanoparticle−Fluoropolymer Composites
Моделирование межзонных переходов в композитах серебряные наночастицы–фторполимер
2005-02-01
SCID: 54.1/y4wg7grx
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Maxwell-Garnett theorydielectric function modelingfluoropolymer nanocompositesinterband transitionssilver nanoparticles
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Abstract (AI)
The interband transition contributions to the optical properties of silver nanoparticles in fluoropolymer matrices are investigated. For the materials in this study, nanoparticle synthesis within the existing polymer matrix is accomplished using an infusion process that consists of diffusing an organometallic precursor gas into the free volume of the fluoropolymer and decomposing the precursor followed by metal nanoparticle nucleation and growth. The resulting polymer matrix nanocomposite has optical properties that are dominated by the response of the nanoparticles owing to the broadbanded transparency of the fluoropolymer matrix. The optical properties of these composites are compared to Maxwell-Garnett and Mie theory with results indicating that interband transitions excited in the silver nanoparticles affect the optical absorption over a range of frequencies including the surface plasmon resonance. It is shown that calculations of the optical absorption spectrum using published data for the silver dielectric function do not accurately describe the measured material response and that a classical model for bound and free electron behavior can best be used to represent the dielectric function of silver.
Key Findings
1
A classical model combining bound and free electron behavior provides the best representation of silver's dielectric function for calculating the composites' optical absorption.
2
Comparisons to Maxwell-Garnett and Mie theory indicate those standard approaches must account for interband transition effects to match observed absorption spectra.
3
Interband transitions in silver nanoparticles within fluoropolymer matrices significantly affect optical absorption across a broad frequency range, including the surface plasmon resonance.
4
Measured optical properties of the composites disagree with predictions using published silver dielectric function data.
5
Nanoparticle synthesis via infusion of an organometallic precursor gas into the fluoropolymer followed by decomposition and nucleation produces composites whose optics are nanoparticle-dominated due to polymer transparency.
Research Object
Silver nanoparticles embedded in fluoropolymer matrices (silver nanoparticle–fluoropolymer nanocomposites)
Research Subject
Interband transition contributions to the optical (absorption) properties of the silver nanoparticles within the fluoropolymer composites, and the adequacy of dielectric-function models (classical bound/free-electron model vs. published silver dielectric data, Maxwell–Garnett and Mie theory) in describing the measured spectra including surface plasmon resonance effects
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2005-02-01
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