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Multifunctional Colloids with Optical, Magnetic, and Superhydrophobic Properties Derived from Nucleophilic Substitution-Induced Layer-by-Layer Assembly in Organic Media

Authors
Yoon, MiseonKim, YounghoonCho, Jinhan
Issue Date
7월-2011
Publisher
AMER CHEMICAL SOC
Keywords
layer-by-layer assembly; nucleophilic substitution reaction; magnetic nanoparticles; quantum dot nanoparticles; colloidal substrate
Citation
ACS NANO, v.5, no.7, pp.5417 - 5426
Indexed
SCIE
SCOPUS
Journal Title
ACS NANO
Volume
5
Number
7
Start Page
5417
End Page
5426
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/112046
DOI
10.1021/nn200538a
ISSN
1936-0851
Abstract
We demonstrate the successful preparation of multifunctional silica colloids by coating with 2-bromo-2-methylpropionic add (BMPA)-stabilized quantum dots (BMPA-QDs) and BMPA-stabilized iron oxide particles (BMPA-Fe3O4), along with amine-functionalized poly(amidoamine) (PAMA) dendrimers, using layer-by-layer (LbL) assembly based on a nucleophilic substitution (NS) reaction between the bromo and amine groups in organic media. The QDs and Fe3O4 nanoparticles used in this study were directly synthesized in a nonpolar solvent (chloroform or toluene), and the oleic acid stabilizers were exchanged with BMPA in the same solvent to minimize chemical and physical damage to the nanoparticles. The direct adsorption of nanoparticles via an NS reaction in organic solvent significantly increased the packing density of the nanoparticles in the lateral dimensions because electrostatic repulsion between neighboring nanoparticles was absent. The multifunctional colloids densely coated with nanoparticles showed excellent characteristics (i.e., superparamagnetism, photoluminescence, and magneto-optical tuning properties) with long-term stability in nonpolar solvents Furthermore, deposition of the nanocomposite colloids onto flat substrates, followed by coating with a low-surface-energy fluoroalkylsilane polymer, produced a densely packed rugged surface morphology in the colloidal films that displayed superhydrophobic properties with water contact angles greater than 150 degrees.
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Cho, Jin han
공과대학 (화공생명공학과)
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