Silicon Nanoantenna Mix Arrays for a Trifecta of Quantum Emitter Enhancements
Массивы смешанных кремниевых наноантенн для тройного усиления квантовых эмиттеров
2021-05-27
SCID: 54.1/rznd73y4
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Mie resonancesPurcell factordirectional emissionfluorescence enhancementsilicon nanoantenna arrays
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Abstract (AI)
Dielectric nanostructures have demonstrated optical antenna effects due to Mie resonances. Previous work has exhibited enhancements in absorption, emission rates and directionality with practical limitations. In this paper, we present a Si mix antenna array to achieve a trifecta enhancement of ∼1200-fold with a Purcell factor of ∼47. The antenna design incorporates ∼10 nm gaps, within which fluorescent molecules strongly absorb the pump laser energy through a resonant mode. In the emission process, the antenna array increases the radiative decay rates of the fluorescence molecules via a Purcell effect and provides directional emission through a separate mode. This work could lead to novel CMOS-compatible platforms to enhance fluorescence for biological and chemical applications.
Key Findings
1
A separate antenna mode provides directional fluorescence emission, complementing pump absorption and radiative-rate enhancement.
2
A silicon mixed-antenna array achieves a trifecta of quantum-emitter enhancements with approximately 1200-fold overall enhancement and a Purcell factor of approximately 47.
3
Approximately 10 nm antenna gaps strongly enhance fluorescent-molecule pump absorption through a resonant optical mode.
4
The array increases fluorescence radiative decay rates through the Purcell effect, enhancing emission from embedded molecules.
5
The proposed platform is silicon-based and CMOS-compatible, with potential applications in biological and chemical fluorescence sensing.
Research Object
silicon nanoantenna mix arrays containing ~10 nm gaps with fluorescent molecules
Research Subject
trifecta enhancement of fluorescent-molecule excitation absorption, radiative decay rate, and emission directionality via resonant modes and the Purcell effect
Publication Details
Publication Date
2021-05-27
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