Nanoscale composition of biphasic polymer nanocolloids in aqueous suspension

被引:12
作者
Kim, Ginam [1 ]
Sousa, Alioscka [2 ]
Meyers, Deborah [1 ]
Libera, Matthew [2 ]
机构
[1] Dow Corning Corp, Sci & Technol, Auburn, MI 48611 USA
[2] Stevens Inst Technol, Dept Chem Biomed & Mat Engn, Hoboken, NJ 07030 USA
关键词
biphasic nanocolloid; cryo-STEM; EELS; multiple least square fitting; polymer;
D O I
10.1017/S1431927608080677
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The molecular distribution in nanocolloids of poly(dimethyl siloxane) (PDMS) and an organic copolymer (methyl acrylate co-methyl methacrylate co-vinyl acetate) preserved in a frozen aqueous solution was investigated using cryovalence electron energy-loss spectroscopy (EELS) Coupled with a scanning transmission electron microscope. Low energy-loss spectra depend upon valence electron structure, and we show that they are substantially different for the PDMS, the copolymer, and the vitrified water studied here. Combining a high efficiency detection system and the use of high-signal low-loss spectra in EELS, we achieved a spatial resolution of 8 nm without serious beam-induced specimen damage in this radiation-sensitive soft-materials system. To obtain quantitative phase maps of silicone and copolymer composition within individual nanoparticles, spectrum datasets were processed via multiple least squares fitting. Quantitative line profiles from the resulting compositional maps indicate that the PDMS lobe of biphasic nanoparticles contained a significant amount of the copolymer and a diffuse interface was formed. Since the nanoparticle synthesis involves polymerization of acrylate monomer dissolved in PDMS nanoparticle precursors, these results suggest that the evolution of the nanocolloid morphology during synthesis is kinetically frozen as the acrylate copolymer achieves some critical molecular weight.
引用
收藏
页码:459 / 468
页数:10
相关论文
共 35 条
[1]   CONTROLLED ENVIRONMENT VITRIFICATION SYSTEM - AN IMPROVED SAMPLE PREPARATION TECHNIQUE [J].
BELLARE, JR ;
DAVIS, HT ;
SCRIVEN, LE ;
TALMON, Y .
JOURNAL OF ELECTRON MICROSCOPY TECHNIQUE, 1988, 10 (01) :87-111
[2]   THEORETICAL ASPECTS OF DEVELOPING LATEX PARTICLE MORPHOLOGY [J].
CHEN, YC ;
DIMONIE, V ;
ELASSER, MS .
PURE AND APPLIED CHEMISTRY, 1992, 64 (11) :1691-1696
[3]  
Colby R.H., 1996, PHYS PROPERTIES POLY
[4]   AN ILLUSTRATED REVIEW OF VARIOUS FACTORS GOVERNING THE HIGH SPATIAL-RESOLUTION CAPABILITIES IN EELS MICROANALYSIS [J].
COLLIEX, C .
ULTRAMICROSCOPY, 1985, 18 (1-4) :131-150
[5]  
Craig D.H., 2002, US Pat, Patent No. [6 433 077, 6433077]
[6]  
Craig D.H., 2001, US Pat, Patent No. [6 169 149, 6169149]
[7]   CRYO-ELECTRON MICROSCOPY OF VITRIFIED SPECIMENS [J].
DUBOCHET, J ;
ADRIAN, M ;
CHANG, JJ ;
HOMO, JC ;
LEPAULT, J ;
MCDOWALL, AW ;
SCHULTZ, P .
QUARTERLY REVIEWS OF BIOPHYSICS, 1988, 21 (02) :129-228
[8]   CRYO-ELECTRON MICROSCOPY OF VITRIFIED WATER [J].
DUBOCHET, J ;
LEPAULT, J .
JOURNAL DE PHYSIQUE, 1984, 45 (NC-7) :85-94
[9]   Some assembly required [J].
Glotzer, SC .
SCIENCE, 2004, 306 (5695) :419-420
[10]   Polymerized colloidal crystal hydrogel films as intelligent chemical sensing materials [J].
Holtz, JH ;
Asher, SA .
NATURE, 1997, 389 (6653) :829-832