Simultaneous excitation and emission enhancements in upconversion luminescence using plasmonic double-resonant gold nanorods
Одновременное усиление возбуждения и излучения в апконверсионной люминесценции с использованием плазмонных золотых наностержней с двойным резонансом
2015-10-15
SCID: 54.1/8m6khdyr
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fluorescence enhancementgold nanorodslanthanide-doped nanocrystalsplasmonic double resonanceupconversion luminescence
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Abstract (AI)
The geometry and dimension of a gold nanorod (GNR) are optimally designed to enhance the fluorescence intensity of a lanthanide-doped upconversion nanocrystal placed in close proximity to the GNR. A systematic study of the electromagnetic interaction between the upconversion emitter of three energy levels and the GNR shows that the enhancement effect arising from localized electric field-induced absorption can be balanced by the negative effect of electronic transition from an intermediate state to the ground state of the emitter. The dependence of fluorescence enhancement on the emitter-GNR separation is investigated, and the results demonstrate a maximum enhancement factor of 120 folds and 160 folds at emission wavelengths 650 and 540 nm, respectively. This is achieved at the emitter-GNR separation ranging from 5 to 15 nm, depending on the initial quantum efficiency of the emitter. The modified upconversion luminescence behavior by adjusting the aspect ratio of the GNR and the relative position of the emitter indicates the dominate role of excitation process in the total fluorescence enhancement. These findings are of great importance for rationally designing composite nanostructures of metal nanoparticles and upconversion nanocrystals with maximized plasmonic enhancement for bioimaging and sensing applications.
Key Findings
1
Adjusting nanorod aspect ratio and emitter position shows that excitation enhancement dominates the total upconversion luminescence enhancement.
2
Gold nanorod geometry and dimensions can be optimized to enhance fluorescence from nearby lanthanide-doped upconversion nanocrystals.
3
Localized electric-field enhancement of excitation can be offset by detrimental electronic transitions from the emitter’s intermediate state to its ground state.
4
Maximum fluorescence enhancements of 120-fold at 650 nm and 160-fold at 540 nm are predicted for emitter–nanorod separations of 5–15 nm.
5
The results provide design principles for double-resonant gold-nanorod/upconversion-nanocrystal composites targeting bioimaging and sensing applications.
Research Object
A lanthanide-doped upconversion nanocrystal placed near a plasmonic double-resonant gold nanorod
Research Subject
The simultaneous plasmonic enhancement of excitation and emission in upconversion luminescence, including its dependence on nanorod geometry, emitter–nanorod separation, and emitter quantum efficiency
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2015-10-15
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