Nanoparticle composition of a ferrofluid and its effects on the magnetic properties

被引:52
作者
Büscher, K
Helm, CA
Gross, C
Glöckl, G
Romanus, E
Weitschies, W
机构
[1] Ernst Moritz Arndt Univ Greifswald, Inst Appl Phys, D-17487 Greifswald, Germany
[2] Johannes Gutenberg Univ Mainz, Inst Phys Chem, D-55099 Mainz, Germany
[3] Ernst Moritz Arndt Univ Greifswald, Inst Pharm, D-17487 Greifswald, Germany
[4] Univ Jena, Inst Solid State Phys, D-07743 Jena, Germany
关键词
D O I
10.1021/la030261x
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Experiments were carried out on a water-based ferrofluid (gamma-Fe2O3 with carboxydextran shell) using photon correlation spectroscopy (PCS), atomic force microscopy, and magnetic nanoparticle relaxation measurements. The experiments were designed with the aim to relate the Neel signals that are in theory generated by large single core particles with nanoscopic properties, that is, particle size, particle size distribution, shell properties, and aggregation. For this purpose, the ferrofluid was fractionated by magnetic fractionation and size exclusion chromatography. Nanoparticles adsorbed onto positively charged substrates form a two-dimensional monolayer. Their mean core diameters are in the range of 6 to about 20 nm, and particles above 10 nm are mostly aggregates. The hydrodynamic particle diameters are between 13 and 80 nm. The core diameter of the smallest fraction is confirmed by X-ray reflectometry; the surface coverage is controlled by bulk diffusion. Comparison with the hydrodynamic radius yields a shell thickness of 3.8 nm. Considering the shell thickness to be constant for all particles, it was possible to calculate the apparent particle diameter in the original ferrofluid from the PCS signals of all fractions. As expected, the small cores yielded no Neel relaxation signals in freeze-dried samples; however, the fractions containing mostly aggregates yielded Neel relaxation signals.
引用
收藏
页码:2435 / 2444
页数:10
相关论文
共 38 条
[1]  
ABRAMOWITZ M, 1972, MATH FUNCTIONS
[2]   Charged polymer brushes: Counterion incorporation and scaling relations [J].
Ahrens, H ;
Forster, S ;
Helm, CA .
PHYSICAL REVIEW LETTERS, 1998, 81 (19) :4172-4175
[3]  
Atkins P. W., 1990, PHYS CHEM
[4]   A study of polyelectrolyte brushes formed from adsorption of amphiphilic diblock copolymers using the surface forces apparatus [J].
Balastre, M ;
Li, F ;
Schorr, P ;
Yang, JC ;
Mays, JW ;
Tirrell, MV .
MACROMOLECULES, 2002, 35 (25) :9480-9486
[5]  
Bean C. P., 1959, J APPL PHYS, V30, pS120, DOI [DOI 10.1063/1.2185850, 10.1063/1.2185850]
[6]  
BERKOV D, 1999, MAGNETISM MED
[7]   ON THE CONCEPT OF THE MAGNETIC VISCOSITY - ANALYTICAL EXPRESSION FOR THE TIME-DEPENDENT MAGNETIZATION [J].
BERKOV, DV .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 1992, 111 (03) :327-329
[8]  
CHARLES SW, 1992, STUDIES MAGNETIC PRO
[9]   MOLECULAR MECHANISMS ASSOCIATED WITH ADHESION AND CONTACT-ANGLE HYSTERESIS OF MONOLAYER SURFACES [J].
CHEN, YL ;
HELM, CA ;
ISRAELACHVILI, JN .
JOURNAL OF PHYSICAL CHEMISTRY, 1991, 95 (26) :10736-10747
[10]  
DEBEYE P, 1929, POLAR MOL