Large fluorescence enhancement via lossless all-dielectric spherical mesocavities
arXiv:2301.10899 · doi:10.1021/acsnano.3c09777
Abstract
Nano- and microparticles are popular media to enhance optical signals, including fluorescence from a dye proximal to the particle. Here we show that homogeneous, lossless, all-dielectric spheres with diameters in the mesoscale range, between nano- (~nm) and micro- ( m) scales, can offer surprisingly large fluorescence enhancements, up to . With the absence of nonradiative Ohmic losses inherent to plasmonic particles, we show that can increase, decrease or even stay the same with increasing intrinsic quantum yield , for suppressed, enhanced or intact radiative decay rates of a fluorophore, respectively. Further, the fluorophore may be located inside or outside the particle, providing additional flexibility and opportunities to design fit for purpose particles. The presented analysis with simple dielectric spheres should spur further interest in this less-explored scale of particles and experimental investigations to realize their potential for applications in imaging, molecular sensing, light coupling, and quantum information processing.
main document 22 pages, 6 figures; supplementary materials 7 pages
References in corpus (6)
- The critical role of shell in enhanced fluorescence of metal-dielectric core-shell nanoparticles
- Narrow optical transitions in erbium-implanted silicon waveguides
- STRATIFY: a comprehensive and versatile MATLAB code for a multilayered sphere
- Fano resonances and fluorescence enhancement of a dipole emitter near a plasmonic nanoshell
- Extraordinary fluorescence enhancement in metal-dielectric core-shell nanoparticles
- Is there a proper figure of merit for a plasmonic structure involved in metal-enhanced fluorescence?