Title :
Fabrication of Colloidal Quantum Dot Microcavities by Imprint Lithography
Author :
Martiradonna, L. ; De Giorgi, M. ; Troisi, L. ; Carbone, L. ; Gigli, G. ; Cingolani, R. ; De Vittorio, M.
Author_Institution :
CNR-INFM, Lecce Univ.
Abstract :
Colloidally synthesized CdSe/ZnS core/shell semiconductor nanocrystals (NCs) show highly efficient, narrow-width and size-tunable luminescence. Moreover, they can be incorporated in polymer matrices and deposited on solid substrates by means of spin-coating techniques. When embedded between two mirrors a NCs/polymer blends microcavity is realised, thus allowing to tailor the photoluminescence spectrum of these emitters. By virtue of the quantized photonic and electronic density of states, colloidal quantum dots embedded in a single mode vertical microcavity are good candidates for the fabrication of high-efficiency emitting devices with high spectral purity and directionality. In this paper, we have applied an organic-inorganic hybrid technology for the fabrication by imprint lithography (IL) of vertical microcavities that embed colloidal quantum dots. The technique exploits a lambda-thick microstructured dielectric top-mirror pressed onto the bottom one, previously coated with the active layer, to sandwich the cavity and precisely control its thickness. Room-temperature photoluminescence measurements show a Q-factor as high as 146 for our devices
Keywords :
II-VI semiconductors; Q-factor; cadmium compounds; colloids; electronic density of states; integrated optics; micro-optics; microcavities; mirrors; optical fabrication; organic-inorganic hybrid materials; photolithography; photoluminescence; polymer blends; semiconductor quantum dots; spin coating; zinc compounds; 293 to 298 K; CdSe-ZnS; CdSe-ZnS semiconductor; Q-factor; colloidal microcavities; colloidal quantum dots; core-shell nanocrystals; dielectric top-mirror; electronic density of states; high-efficiency emitting devices; imprint lithography; microcavity fabrication; microstructured top-mirror; mirrors; nanocrystal-polymer blends; narrow-width luminescence; organic-inorganic hybrid technology; photoluminescence spectrum; polymer matrices; quantized photonic density of states; quantum dot microcavities; room-temperature photoluminescence; single mode microcavity; size-tunable luminescence; solid substrates; spectral purity; spin-coating techniques; vertical microcavity; Fabrication; Lithography; Luminescence; Microcavities; Nanocrystals; Photoluminescence; Polymers; Quantum dots; Solids; Zinc compounds; colloidal nanocrystals; imprint lithography; microcavity;
Conference_Titel :
Transparent Optical Networks, 2006 International Conference on
Conference_Location :
Nottingham
Print_ISBN :
1-4244-0235-2
Electronic_ISBN :
1-4244-0236-0
DOI :
10.1109/ICTON.2006.248323