Control of fluorescence in quantum emitter and metallic nanoshell hybrids for medical applications
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作者:
Singh, Mahi R.
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Univ Western Ontario, Dept Phys & Astron, London, ON N6A 3K7, CanadaUniv Western Ontario, Dept Phys & Astron, London, ON N6A 3K7, Canada
Singh, Mahi R.
[1
]
Guo, Jiaohan
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Univ Western Ontario, Dept Phys & Astron, London, ON N6A 3K7, CanadaUniv Western Ontario, Dept Phys & Astron, London, ON N6A 3K7, Canada
Guo, Jiaohan
[1
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Cid, Jose M. J.
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Univ Western Ontario, Dept Phys & Astron, London, ON N6A 3K7, Canada
Univ Autonoma Estado Mexico, Fac Arquitectura & Diseno, Toluca 50110, MexicoUniv Western Ontario, Dept Phys & Astron, London, ON N6A 3K7, Canada
Cid, Jose M. J.
[1
,2
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De Hoyos Martinez, Jesus E.
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Univ Autonoma Estado Mexico, Fac Arquitectura & Diseno, Toluca 50110, MexicoUniv Western Ontario, Dept Phys & Astron, London, ON N6A 3K7, Canada
De Hoyos Martinez, Jesus E.
[2
]
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[1] Univ Western Ontario, Dept Phys & Astron, London, ON N6A 3K7, Canada
[2] Univ Autonoma Estado Mexico, Fac Arquitectura & Diseno, Toluca 50110, Mexico
We study the light emission from a quantum emitter and double metallic nanoshell hybrid systems. Quantum emitters act as local sources which transmit their light efficiently due to a double nanoshell near field. The double nanoshell consists of a dielectric core and two outer nanoshells. The first nanoshell is made of a metal, and the second spacer nanoshell is made of a dielectric material or human serum albumin. We have calculated the fluorescence emission for a quantum emitter-double nanoshell hybrid when it is injected in an animal or a human body. Surface plasmon polariton resonances in the double nanoshell are calculated using Maxwell's equations in the quasistatic approximation, and the fluorescence emission is evaluated using the density matrix method in the presence of dipole-dipole interactions. We have compared our theory with two fluorescence experiments in hybrid systems in which the quantum emitter is Indocyanine Green or infrared fluorescent molecules. The outer spacer nanoshell of double metallic nanoshells consists of silica and human serum albumin with variable thicknesses. Our theory explains the enhancement of fluorescence spectra in both experiments. We find that the thickness of the spacer nanoshell layer increases the enhancement when the fluorescence decreases. The enhancement of the fluorescence depends on the type of quantum emitter, spacer layer, and double nanoshell. We also found that the peak of the fluorescence spectrum can be shifted by changing the shape and the size of the nanoshell. The fluorescence spectra can be switched from one peak to two peaks by removing the degeneracy of excitonic states in the quantum emitter. Hence, using these properties, one can use these hybrids as sensing and switching devices for applications in medicine. Published by AIP Publishing.