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Joo, Jinmyoung
Laboratory for Advanced Biomaterials and Translational Medicine
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Enhanced quantum yield of photoluminescent porous silicon prepared by supercritical drying

Author(s)
Joo, JinmyoungDefforge, ThomasLoni, ArmandoKim, DokyoungLi, Z. Y.Sailor, Michael J.Gautier, GaelCanham, Leigh T.
Issued Date
2016-04
DOI
10.1063/1.4947084
URI
https://scholarworks.unist.ac.kr/handle/201301/25690
Fulltext
https://aip.scitation.org/doi/10.1063/1.4947084
Citation
APPLIED PHYSICS LETTERS, v.108, no.15, pp.153111
Abstract
The effect of supercritical drying (SCD) on the preparation of porous silicon (pSi) powders has been investigated in terms of photoluminescence (PL) efficiency. Since the pSi contains closely spaced and possibly interconnected Si nanocrystals (<5 nm), pore collapse and morphological changes within the nanocrystalline structure after common drying processes can affect PL efficiency. We report the highly beneficial effects of using SCD for preparation of photoluminescent pSi powders. Significantly higher surface areas and pore volumes have been realized by utilizing SCD (with CO2 solvent) instead of air-drying. Correspondingly, the pSi powders better retain the porous structure and the nano-sized silicon grains, thus minimizing the formation of non-radiative defects during liquid evaporation (air drying). The SCD process also minimizes capillary-stress induced contact of neighboring nanocrystals, resulting in lower exciton migration levels within the network. A significant enhancement of the PL quantum yield (>32% at room temperature) has been achieved, prompting the need for further detailed studies to establish the dominant causes of such an improvement.
Publisher
AMER INST PHYSICS
ISSN
0003-6951
Keyword
NANOCRYSTALSNANOPARTICLESLUMINESCENCESIZERAMANSEMICONDUCTORSPASSIVATIONEFFICIENCYOXIDATIONDOTS

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