Amphiphilic hyperbranched polyglycerol-block-polycaprolactone copolymer-grafted nanoparticles with improved encapsulation properties

被引:16
作者
Ejaz, Muhammad [1 ]
Alb, Alina M. [2 ]
Grayson, Scott M. [1 ]
机构
[1] Tulane Univ, Dept Chem, New Orleans, LA 70118 USA
[2] Tulane Univ, Phys & Engn Phys Dept, New Orleans, LA 70118 USA
关键词
Silica nanoparticles; Poly(epsilon-caprolactone); Polyglycerol; Nanopartide micelle; Dispersant; CORE-SHELL NANOPARTICLES; UNIMOLECULAR MICELLES; POLYMERIZATION; SURFACTANTS; ADSORPTION; INTERFACE; GOLD; ARMS;
D O I
10.1016/j.reactfunctpolym.2016.03.006
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Amphiphilic block copolymer was grafted onto a silica nanoparticle core to template their micelle-like conformation when suspended in water. Such amphiphilic "nanoparticle micelles" will not disaggregate upon dilution, unlike the traditional self-assembled micelles. These nanodispersants were prepared by grafting successive blocks of linear poly(epsilon-caprolactone) (PCL) and hyperbranched poly(glycerol) (HPG), from functionalized silica nano particles (SiO(2)NPs) using surface-initiated ring-opening polymerization. The swellable hydrophobic PCL inner block enabled the encapsulation of a hydrocarbon payload while the hydrophilic HPG outer block afforded stable dispersions in aqueous media. These nanoparticle-based micelles are proposed as improved dispersants that exhibit stability to high dilution unlike traditional small molecule surfactants. Their capacity for hydrocarbon encapsulation was confirmed by their sequestration of hydrophobic ultraviolet active dyes when dispersed in water. Additional characterization using light scattering-based methodologies combined with ultraviolet spectroscopy, Fourier transform infrared spectroscopy, transmission electron microscopy, and thermogravimetric analysis experiments confirmed the nanodispersant structure and their "unimolecular micelle-like" behavior. (C) 2016 Published by Elsevier B.V.
引用
收藏
页码:39 / 46
页数:8
相关论文
共 33 条
[1]   Dendritic Polyglycerols for Biomedical Applications [J].
Calderon, Marcelo ;
Quadir, Mohiuddin Abdul ;
Sharma, Sunil Kumar ;
Haag, Rainer .
ADVANCED MATERIALS, 2010, 22 (02) :190-218
[2]   Amphiphilic cylindrical core-shell brushes via a "grafting from" process using ATRP [J].
Cheng, GL ;
Boker, A ;
Zhang, MF ;
Krausch, G ;
Müller, AHE .
MACROMOLECULES, 2001, 34 (20) :6883-6888
[3]   Partitioning of ethoxylated nonionic surfactants in water/NAPL systems: Effects of surfactant and NAPL properties [J].
Cowell, MA ;
Kibbey, TCG ;
Zimmerman, JB ;
Hayes, KF .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2000, 34 (08) :1583-1588
[4]   Modular amphiphilic copolymer-grafted nanoparticles: "nanoparticle micelle" behavior enhances utility as dispersants [J].
Ejaz, Muhammad ;
Alb, Alina M. ;
Kosakowska, Karolina A. ;
Grayson, Scott M. .
POLYMER CHEMISTRY, 2015, 6 (44) :7749-7757
[5]  
Grabowski E., 1983, MEASUREMENT SUSPENDE, P199
[6]  
Hawker C.J., 1993, J CHEM SOC, V12, P1287
[7]   Starlike block copolymers with amphiphilic arms as models for unimolecular micelles [J].
Heise, A ;
Hedrick, JL ;
Frank, CW ;
Miller, RD .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1999, 121 (37) :8647-8648
[8]   Novel amphiphilic architectures by ring-opening metathesis polymerization of macromonomers [J].
Heroguez, V ;
Gnanou, Y ;
Fontanille, M .
MACROMOLECULES, 1997, 30 (17) :4791-4798
[9]   Synthesis and cytotoxicity assessment of superparamagnetic iron-gold core-shell nanoparticles coated with polyglycerol [J].
Jafari, T. ;
Simchi, A. ;
Khakpash, N. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2010, 345 (01) :64-71
[10]   Synthesis of poly(ε-caprolactone)-silica nanocomposites:: from hairy colloids to core-shell nanoparticles [J].
Joubert, M ;
Delaite, C ;
Bourgeat-Lami, E ;
Dumas, P .
NEW JOURNAL OF CHEMISTRY, 2005, 29 (12) :1601-1609