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Modified reverse microemulsion synthesis for iron oxide/silica core-shell colloidal particles
Zhu Y.3; Jiang F.Y.4; Chen K.2; Kang F.2; Tang Z.K.3
2013-04-01
Source PublicationJournal of Sol-Gel Science and Technology
ISSN09280707
Volume66Issue:1Pages:180-186
Abstract

Iron oxide/silica core-shell colloidal particles were prepared by basic reverse microemulsion (RM) method and two modified RM methods. By basic RM method, maximum particle size obtained was mere 40 nm. For building photonic crystals working in the visible range, the colloidal particles must be larger than 100 nm. Thus two modified RM methods were used. By alcohol modified RM method, short chain alcohols were used as co-surfactant. The particle size rose to near 100 nm, but the core-shell structure was comparatively poor. By emulsifier pair modified RM method, the particle size leapt to over 200 nm and a narrow growth window was found favorable to enhance the stability and rigidity of the surfactants layers. The core-shell mechanism was also discussed and a new four-step mechanism was proposed. © 2013 Springer Science+Business Media New York.

KeywordElectron Microscopy Nanostructures Sol-gel Chemistry
DOI10.1007/s10971-013-2985-x
URLView the original
Language英語English
WOS IDWOS:000318511800025
Scopus ID2-s2.0-84877585938
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Citation statistics
Document TypeJournal article
CollectionUniversity of Macau
Affiliation1.Yantai University
2.Tsinghua University
3.Sun Yat-Sen University
4.Hong Kong University of Science and Technology
Recommended Citation
GB/T 7714
Zhu Y.,Jiang F.Y.,Chen K.,et al. Modified reverse microemulsion synthesis for iron oxide/silica core-shell colloidal particles[J]. Journal of Sol-Gel Science and Technology, 2013, 66(1), 180-186.
APA Zhu Y.., Jiang F.Y.., Chen K.., Kang F.., & Tang Z.K. (2013). Modified reverse microemulsion synthesis for iron oxide/silica core-shell colloidal particles. Journal of Sol-Gel Science and Technology, 66(1), 180-186.
MLA Zhu Y.,et al."Modified reverse microemulsion synthesis for iron oxide/silica core-shell colloidal particles".Journal of Sol-Gel Science and Technology 66.1(2013):180-186.
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