» Articles » PMID: 17193362

Optical Properties of Nanoparticle-based Metallodielectric Inverse Opals

Overview
Journal Small
Date 2006 Dec 29
PMID 17193362
Citations 3
Authors
Affiliations
Soon will be listed here.
Abstract

Metallodielectric inverse opals were prepared by co-crystallizing silica-coated gold nanoparticles and polymer spheres, followed by removal of the crystal template. The inverse opals exhibit a distinct reflectance peak, which results from Bragg diffraction due to the highly ordered 3D macroporous structure. Photonic band-structure calculations indicate that the characteristic reflectance peaks observed are signatures of the directional gap at the L point. It is demonstrated that the optical properties (the position and magnitude of the electromagnetic bandgaps) of the gold-silica nanocomposite inverse opals can be engineered by varying the nanoparticle morphology (core size and shell thickness) and/or the nanoparticle volume-filling ratio of the composite. The use of metallodielectric nanoparticles to form inverse opals offers a versatile approach to prepare photonic materials that may exhibit absolute bandgaps.

Citing Articles

Tunable-wavelength nanosecond laser tailoring of plasmon resonance spectra of gold nanoparticle colloids.

Sukmanee T, Szuster M, Gorski A, Holdynski M, Gawinkowski S Nanoscale Adv. 2023; 5(14):3697-3704.

PMID: 37441263 PMC: 10334372. DOI: 10.1039/d3na00225j.


Smart materials-integrated sensor technologies for COVID-19 diagnosis.

Erdem O, Derin E, Sagdic K, Yilmaz E, Inci F Emergent Mater. 2021; 4(1):169-185.

PMID: 33495747 PMC: 7817967. DOI: 10.1007/s42247-020-00150-w.


Gold Nanoparticles in Photonic Crystals Applications: A Review.

Venditti I Materials (Basel). 2017; 10(2).

PMID: 28772458 PMC: 5459143. DOI: 10.3390/ma10020097.