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The Optical Properties of Metal Nanoparticles:  The Influence of Size, Shape, and Dielectric Environment

The Journal of Physical Chemistry B · 2002 · Vol. 107(3) · pp. 668–677
K. Lance KellyEduardo A. CoronadoLin Lin ZhaoGeorge C. Schatz

Abstract

The optical properties of metal nanoparticles have long been of interest in physical chemistry, starting with Faraday's investigations of colloidal gold in the middle 1800s. More recently, new lithographic techniques as well as improvements to classical wet chemistry methods have made it possible to synthesize noble metal nanoparticles with a wide range of sizes, shapes, and dielectric environments. In this feature article, we describe recent progress in the theory of nanoparticle optical properties, particularly methods for solving Maxwell's equations for light scattering from particles of arbitrary shape in a complex environment. Included is a description of the qualitative features of dipole and quadrupole plasmon resonances for spherical particles; a discussion of analytical and numerical methods for calculating extinction and scattering cross-sections, local fields, and other optical properties for nonspherical particles; and a survey of applications to problems of recent interest involving triangular silver particles and related shapes.

Gold and Silver Nanoparticles Synthesis and ApplicationsPlasmonic and Surface Plasmon ResearchNanoparticles: synthesis and applicationsDiscrete dipole approximationNanoparticleDielectricScatteringLight scatteringMaterials scienceExtinction (optical mineralogy)QuadrupolePlasmonNanotechnology
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The Journal of Physical Chemistry B · 1997 · 1,641 citations
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Reviews of Modern Physics · 1985 · 5,366 citations
Nanoengineering of optical resonances
Chemical Physics Letters · 1998 · 2,242 citations
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