Preparation and controlled self-assembly of janus magnetic nanoparticles

被引:181
作者
Lattuada, Marco [1 ]
Hatton, T. Alan [1 ]
机构
[1] MIT, Dept Chem Engn, Cambridge, MA 02139 USA
关键词
D O I
10.1021/ja0740521
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Janus magnetic nanoparticles (similar to 20 nm) were prepared by grafting either polystyrene sodium sulfonate (PSSNa) or polydimethylamino ethylmethacrylate (PDMAEMA) to the exposed surfaces of negatively charged poly(acrylic acid) (PAA)-coated magnetite nanoparticles adsorbed onto positively charged silica beads. Individually dispersed Janus nanoparticles were obtained by repulsion from the beads on reversal of the silica surface charge when the solution pH was increased. Controlled aggregation of the Janus nanoparticles was observed at low pH values, with the formation of stable clusters of approximately 2-4 times the initial size of the particles. Cluster formation was reversed, and individually dispersed nanoparticles recovered, by restoring the pH to high values. At intermediate pH values, PSSNa Janus nanoparticles showed moderate clustering, while PDMAEMA Janus nanoparticles aggregated uncontrollably due to dipolar interactions. The size of the stable clusters could be controlled by increasing the molecular weight of the grafted polymer, or by decreasing the magnetic nanoparticle surface availability for grafting, both of which yielded larger cluster sizes. The addition of small amounts of PAA-coated magnetic nanoparticles to the Janus nanoparticle suspension resulted in a further increase in the final cluster size. Monte Carlo simulation results compared favorably with experimental observations and showed the formation of small, elongated clusters similar in structure to those observed in cryo-TEM images.
引用
收藏
页码:12878 / 12889
页数:12
相关论文
共 65 条
[31]   High-gradient magnetic separation of coated magnetic nanoparticles [J].
Moeser, GD ;
Roach, KA ;
Green, WH ;
Hatton, TA ;
Laibinis, PE .
AICHE JOURNAL, 2004, 50 (11) :2835-2848
[32]   Structure of polymer-stabilized magnetic fluids: Small-angle neutron scattering and mean-field lattice modeling [J].
Moeser, GD ;
Green, WH ;
Laibinis, PE ;
Linse, P ;
Hatton, TA .
LANGMUIR, 2004, 20 (13) :5223-5234
[33]   Monodisperse 3d transition-metal (Co, Ni, Fe) nanoparticles and their assembly into nanoparticle superlattices [J].
Murray, CB ;
Sun, SH ;
Doyle, H ;
Betley, T .
MRS BULLETIN, 2001, 26 (12) :985-991
[34]   Superparamagnetic nanoparticles for biomedical applications:: Possibilities and limitations of a new drug delivery system [J].
Neuberger, T ;
Schöpf, B ;
Hofmann, H ;
Hofmann, M ;
von Rechenberg, B .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2005, 293 (01) :483-496
[35]   Graft polymerization of vinyl acetate onto silica [J].
Nguyen, V ;
Yoshida, W ;
Cohen, Y .
JOURNAL OF APPLIED POLYMER SCIENCE, 2003, 87 (02) :300-310
[36]   Synthesis of monodisperse bicolored janus particles with electrical anisotropy using a microfluidic co-flow system [J].
Nisisako, Takasi ;
Torii, Toru ;
Takahashi, Takanori ;
Takizawa, Yoichi .
ADVANCED MATERIALS, 2006, 18 (09) :1152-+
[37]   Adsorption of disk-shaped Janus beads at liquid-liquid interfaces [J].
Nonomura, Y ;
Komura, S ;
Tsujii, K .
LANGMUIR, 2004, 20 (26) :11821-11823
[38]   Ultra-large-scale syntheses of monodisperse nanocrystals [J].
Park, J ;
An, KJ ;
Hwang, YS ;
Park, JG ;
Noh, HJ ;
Kim, JY ;
Park, JH ;
Hwang, NM ;
Hyeon, T .
NATURE MATERIALS, 2004, 3 (12) :891-895
[39]   Supraparticles and "Janus" particles fabricated by replication of particle monolayers at liquid surfaces using a gel trapping technique [J].
Paunov, VN ;
Cayre, OJ .
ADVANCED MATERIALS, 2004, 16 (9-10) :788-+
[40]   Design and synthesis of Janus micro- and nanoparticles [J].
Perro, A ;
Reculusa, S ;
Ravaine, S ;
Bourgeat-Lami, E ;
Duguet, E .
JOURNAL OF MATERIALS CHEMISTRY, 2005, 15 (35-36) :3745-3760