Device and method for luminescence enhancement by resonant energy transfer from an absorptive thin film
Disclosed are a device and a method for the design and fabrication of the device for enhancing the brightness of luminescent molecules, nanostructures, and thin films. The device includes a mirror, a dielectric medium or spacer, an absorptive layer, and a luminescent layer. The absorptive layer is a continuous thin film of a strongly absorbing organic or inorganic material. The luminescent layer may be a continuous luminescent thin film or an arrangement of isolated luminescent species, e.g., organic or metal-organic dye molecules, semiconductor quantum dots, or other semiconductor nanostructures, supported on top of the absorptive layer.
1. A device exhibiting enhanced luminescence, comprising:
a substrate;
a mirror adjacent to the substrate;
a dielectric spacer adjacent to the mirror;
an absorptive layer adjacent to the dielectric spacer, the absorptive layer having a wavelength of peak absorption;
a luminescent layer adjacent to the absorptive layer, the luminescent layer having an absorption bandwidth, the absorptive layer being configured to re-emit in a bandwidth that overlaps with the absorption bandwidth of the luminescent layer; and
a transparent cover;
wherein the dielectric spacer has a thickness of about one-fourth of the wavelength of peak absorption of the absorptive layer, forming a critically coupled resonator configured to maximize intensity of luminescence from the luminescent layer.
2. The device of claim 1 , wherein the luminescent layer comprises at least one of:
metal-organic dye molecules, semiconductor quantum dots and a nanostructure of a luminescent material.
3. The device of claim 1 , wherein the luminescent layer comprises DCM.
4. The device of claim 1 , wherein the luminescent layer comprises Alq 3 .
5. The device of claim 1 , wherein the absorptive layer comprises a J-aggregating thiacyanine dye.
6. The device of claim 1 , wherein the luminescent layer is configured to emit luminescence by absorbing energy of the incident light from the absorptive layer via exciton diffusion and resonant energy transfer.
7. The device of claim 1 , wherein the absorptive layer comprises a material having an exciton diffusion length, the absorptive layer having a thickness less than the exciton diffusion length.
8. The device of claim 1 , wherein the device is substantially spherical.
9. The device of claim 1 , wherein the mirror, dielectric spacer, absorptive layer and luminescent layer are arranged concentrically about the substrate.