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Designer Colloidal Layers of Disordered Plasmonic Nanoparticles for Light Extraction
- Source :
- Advanced Functional Materials. 26:6215-6223
- Publication Year :
- 2016
- Publisher :
- Wiley, 2016.
-
Abstract
- Basic design rules are disclosed for broadband light-extraction colloidal films formed with disordered ensembles of plasmonic particles. They are derived through the numerical study of a test-bed geometry consisting of a low-refractive index slab in air. Albeit simple, the geometry encompasses many physically effects encountered in real light-emitting devices, including the pronounced absorption at the peak of the nanoparticles resonance spectrum, the anisotropy of the radiation diagram of nanoparticles in waveguides and unavoidable coherent multiple interferences that ruin the predictive strength of first-order scattering models. How we can simultaneously take advantage of (1) the shape or size of the individual nanoparticles, (2) their transverse position with respect to the guiding photonic structure, (3) their concentration, and (4) the structural topology of the disorder ensemble are illustrated. Following this approach, a threefold enhancement in the extraction efficiency can be reached as compared to a film without plasmonic particles. It is also predicted that the extraction rapidly saturates and then decreases as the nanoparticle density increases, suggesting that best performance is achieved at low concentrations. Spectrally broad and directionally random far-field radiation diagrams are additionally reported, which do not suffer from deterministic interferential behaviors observed at particular wavelengths and directionalities with periodic light-extraction structures.
- Subjects :
- Plasmonic nanoparticles
Materials science
Scattering
business.industry
Physics::Optics
Nanoparticle
02 engineering and technology
021001 nanoscience & nanotechnology
Condensed Matter Physics
01 natural sciences
Electronic, Optical and Magnetic Materials
010309 optics
Biomaterials
Wavelength
Optics
0103 physical sciences
Electrochemistry
Optoelectronics
Photonics
0210 nano-technology
Anisotropy
Absorption (electromagnetic radiation)
business
Plasmon
Subjects
Details
- ISSN :
- 1616301X
- Volume :
- 26
- Database :
- OpenAIRE
- Journal :
- Advanced Functional Materials
- Accession number :
- edsair.doi...........1790bde2cd3874aa559d5c5b2b8b2c16