Efficient light amplification in low gain materials due to a photonic band edge effect.
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Summary
Simulation of the photonic band edge effect on the light intensity of spectrally broad source interacting with a diamond PhC with low optical gain shows that up to 3.5-fold enhancement of light intensity can be achieved.
- Type
- article
- Published
- 2012-03-26
- Cited by
- 6
- References
- 38
- OpenAlex
- https://openalex.org/W22453388
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:35410233
Keywords
Computer science, Business
References
- Photonic band gap guidance in optical fibers
- Three-dimensional control of light in a two-dimensional photonic crystal slab
- Slow light in photonic crystal waveguides
- Guided modes in photonic crystal slabs
- Mapping the local density of optical states of a photonic crystal with single quantum dots.
- Photonic band-edge micro lasers with quantum dot gain.
- Measurement of photonic band structure in a two-dimensional periodic dielectric array.
- Two-dimensional local density of states in two-dimensional photonic crystals.
- Fabrication and Characterization of Two-Dimensional Photonic Crystal Microcavities in Nanocrystalline Diamond
- Block-iterative frequency-domain methods for Maxwell's equations in a planewave basis.
- A wavelength-selective photonic-crystal waveguide coupled to a nanowire light source
- Modes of random lasers
- High Extraction Efficiency of Spontaneous Emission from Slabs of Photonic Crystals
- Group index limitations in slow-light photonic crystals
- Optical gain at the F-band of oxidized silicon nanocrystals
- Formation of Continuous Nanocrystalline Diamond Layers on Glass and Silicon at Low Temperatures
- Diamond based photonic crystal microcavities.
- Enhanced light amplification due to group-velocity anomaly peculiar to two- and three-dimensional photonic crystals.
- Spontaneous-emission control by photonic crystals and nanocavities
- Symmetry, degeneracy, and uncoupled modes in two-dimensional photonic lattices.
Cited by
- Silicon quantum dots: surface matters
- Two-dimensional photonic crystal slab with embedded silicon nanocrystals: Efficient photoluminescence extraction
- Enhanced Fluorescence Emission from Silicon-Rich Nitride Guided Mode Resonance Gratings
- Enhanced Extraction of Silicon-Vacancy Centers Light Emission Using Bottom-Up Engineered Polycrystalline Diamond Photonic Crystal Slabs.
- Silicon nanocrystal-based photonic crystal slabs with broadband and efficient directional light emission
- Structurally engineered colloidal quantum dot phosphor using TiO2 photonic crystal backbone
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