Plasmonic engineering of spontaneous emission from silicon nanocrystals
Плазмонное управление спонтанным излучением кремниевых нанокристаллов
2013-09-16
SCID: 54.1/d7wpc79k
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gold nanoparticleshybrid emitterphotoluminescence enhancementplasmonic engineeringsilicon nanocrystals
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Abstract (AI)
Silicon nanocrystals offer huge advantages compared to other semi-conductor quantum dots as they are made from an abundant, non-toxic material and are compatible with silicon devices. Besides, among a wealth of extraordinary properties ranging from catalysis to nanomedicine, metal nanoparticles are known to increase the radiative emission rate of semiconductor quantum dots. Here, we use gold nanoparticles to accelerate the emission of silicon nanocrystals. The resulting integrated hybrid emitter is 5-fold brighter than bare silicon nanocrystals. We also propose an in-depth analysis highlighting the role of the different physical parameters in the photoluminescence enhancement phenomenon. This result has important implications for the practical use of silicon nanocrystals in optoelectronic devices, for instance for the design of efficient down-shifting devices that could be integrated within future silicon solar cells.
Key Findings
1
Gold nanoparticles accelerate the radiative emission of silicon nanocrystals through plasmonic coupling.
2
Plasmonic enhancement supports practical applications of silicon nanocrystals in optoelectronics, including efficient down-shifting layers for future silicon solar cells.
3
The integrated gold–silicon-nanocrystal hybrid emitter is five-fold brighter than bare silicon nanocrystals.
4
The study analyzes how different physical parameters control photoluminescence enhancement in the hybrid system.
Research Object
silicon nanocrystals coupled with gold nanoparticles (an integrated hybrid emitter)
Research Subject
plasmonically enhanced photoluminescence, specifically the acceleration of radiative emission and the physical parameters governing the enhancement
Publication Details
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2013-09-16
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