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Well-defined hollow nanochanneled-silica nanospheres prepared with the aid of sacrificial copolymer nanospheres and surfactant nanocylinders SCIE SCOPUS

Title
Well-defined hollow nanochanneled-silica nanospheres prepared with the aid of sacrificial copolymer nanospheres and surfactant nanocylinders
Authors
Kim, YYHwang, BSong, SRee, BJKim, YCho, SYHeo, KKwon, YKRee, M
Date Issued
2015-01
Publisher
ROYAL SOC CHEMISTRY
Abstract
A new approach for synthesizing well-defined hollow nanochanneled-silica nanosphere particles is demonstrated, and the structural details of these particles are described for the first time. Positively charged styrene copolymer nanospheres with a clean, smooth surface and a very narrow size distribution are synthesized by surfactant-free emulsion copolymerization and used as a thermal sacrificial core template for the production of core-shell nanoparticles. A surfactant/silica composite shell with a uniform thickness is successfully produced and deposited onto the polymeric core template by charge density matching between the polymer nanosphere template surface and the negatively charged silica precursors and then followed by selective thermal decomposition of the polymeric core and the surfactant cylinder domains in the shell, producing the hollow nanochanneled-silica nanospheres. Comprehensive, quantitative structural analyses collectively confirm that the obtained nanoparticles are structurally well defined with a hollow core and a shell composed of cylindrical nanochannels that provide facile accessibility to the hollow interior space. Overall, the hollow nanochanneled-silica nanoparticles have great potential for applications in various fields.
Keywords
X-RAY-SCATTERING; THIN-FILMS; NANOPOROUS ANALOGS; DRUG-DELIVERY; NANOSTRUCTURES; NANOPARTICLES; MICROSPHERES; NANOCAPSULES; SIZE
URI
https://oasis.postech.ac.kr/handle/2014.oak/35701
DOI
10.1039/C5NR03800F
ISSN
2040-3364
Article Type
Article
Citation
NANOSCALE, vol. 7, no. 35, page. 14774 - 14785, 2015-01
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이문호REE, MOONHOR
Dept of Chemistry
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