Diffusion-limited aggregation of magnetic particles under a field

被引:12
|
作者
Licinio, P
Teixeira, AV
Safar, GAM
Andrade, MS
Meira-Belo, LC
Leitao, UA
机构
[1] UFMG, ICEx, Dept Fis, BR-30123970 Belo Horizonte, MG, Brazil
[2] CETEC, BR-31170000 Belo Horizonte, MG, Brazil
关键词
aggregation; diffusion-Brownian; light scattering; magnetic fluids;
D O I
10.1016/S0304-8853(00)00928-8
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Nanosize magnetic particles in dispersions should be strongly stabilized in order to avoid flocculation. Even with the use of steric surfactants or ionic peptization of particle surface, potential minima due to magnetic interaction may result in temperature-dependent transient polymerization. To this extent, it seems that the angular degrees of freedom are paramount to stability against aggregation. The last conclusion can be drawn from experiments in which an aligning magnetic field is applied to a magnetic fluid. Aggregation in such conditions have been measured using light-scattering techniques. Commercial ferrofluid was diluted in water to about 5 x 10(-3) particle volume fraction, where it becomes semi-transparent. With an applied field of 1.6 x 10(5) A/m the time-dependent low angle scattered intensity has been measured. Data analysis shows the occurrence of two successive power-law aggregation regimes. For the long-term growth, contrary to the traditional diffusion-limited aggregation of isotropic particles, the chain growth rate increases with time. At low concentrations this process may go on for hours and no evidence of an equilibrium or saturation was seen in this particular set of experiments. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:1945 / 1947
页数:3
相关论文
共 50 条
  • [1] Constrained diffusion-limited aggregation in 3 dimensions
    Bourke, Paul
    COMPUTERS & GRAPHICS-UK, 2006, 30 (04): : 646 - 649
  • [2] Beyond diffusion-limited aggregation kinetics in microparticle suspensions
    Erb, Randall M.
    Krebs, Melissa D.
    Alsberg, Eben
    Samanta, Bappaditya
    Rotello, Vincent M.
    Yellen, Benjamin B.
    PHYSICAL REVIEW E, 2009, 80 (05):
  • [3] Cluster growth by diffusion-limited aggregation in shear flow
    Kovacs, T
    Bardos, G
    PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 1997, 247 (1-4) : 59 - 66
  • [4] Flocculation of hematite with polyacrylic acid: Fractal structures in the reaction- and diffusion-limited aggregation regimes
    Ferretti, R
    Zhang, JW
    Buffle, J
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1998, 208 (02) : 509 - 517
  • [5] A modified diffusion-limited cluster aggregation model for accurate prediction of the coagulation and fragmentation process in nanoparticle suspension
    Jing, Dengwei
    Hu, Songwei
    Zhang, Yanming
    Luo, Jiaying
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2019, 52 (45)
  • [6] The interaction of nanoparticulate Fe3O4 during the diffusion-limited aggregation process: A molecular dynamics simulation
    Liu, ZhengJian
    Cheng, Qiang
    Wang, YaoZu
    Li, Kejiang
    Wang, Rongrong
    Zhang, Jianliang
    POWDER TECHNOLOGY, 2021, 384 : 141 - 147
  • [7] Diffusion-limited and advection-driven electrodeposition in a microfluidic channel
    Wlasenko, A.
    Soltani, F.
    Zakopcan, D.
    Sinton, D.
    Steeves, G. M.
    PHYSICAL REVIEW E, 2010, 81 (02):
  • [8] Ferrofluid aggregation in chains under the influence of a magnetic field
    Ivanov, Alexey O.
    Kantorovich, Sofia S.
    Mendelev, Valentin S.
    Pyanzina, Elena S.
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2006, 300 (01) : E206 - E209
  • [9] Aggregation of magnetic holes in a rotating magnetic field
    Cernak, Jozef
    Helgesen, Geir
    PHYSICAL REVIEW E, 2008, 78 (06):
  • [10] Magnetic field influence on asphaltene aggregation monitored by diffusion NMR spectroscopy: Is aggregation reversible at high magnetic fields?
    Vukovic, Jelena Parlov
    Novak, Predrag
    Jednacak, Tomislav
    Kvestak, Martina
    Kovacevic, Davor
    Smrecki, Vilko
    Mikulandra, Ivana
    Ibrahimpasic, Mateja Djetelic
    Glanzer, Simon
    Zangger, Klaus
    JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2020, 41 (02) : 179 - 187