Electrochemical synthesis of magnetic iron oxide nanoparticles with controlled size

被引:0
作者
Maria Starowicz
Paweł Starowicz
Jan Żukrowski
Janusz Przewoźnik
Andrzej Lemański
Czesław Kapusta
Jacek Banaś
机构
[1] AGH University of Science and Technology,Department of Chemistry and Corrosion of Metals, Faculty of Foundry Engineering
[2] Jagiellonian University,M. Smoluchowski Institute of Physics
[3] AGH University of Science and Technology,Department of Solid State Physics, Faculty of Physics and Applied Computer Science
来源
Journal of Nanoparticle Research | 2011年 / 13卷
关键词
Magnetic nanoparticles; Iron oxide; Maghemite; Magnetite; Electrochemical synthesis;
D O I
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中图分类号
学科分类号
摘要
We present a novel and facile method enabling synthesis of iron oxide nanoparticles, which are composed mainly of maghemite according to X-ray diffraction (XRD) and Mössbauer spectroscopy studies. The proposed process is realized by anodic iron polarization in deaerated LiCl solutions containing both water and ethanol. Water seems to play an important role in the synthesis. Morphology of the product was studied by means of transmission electron microscopy and XRD. In the solution containing almost 100% of water a black suspension of round shaped maghemite nanoparticles of 20–40 nm size is obtained. Regulating water concentration allows to control nanoparticle size, which is reduced to 4–6 nm for 5% of water with a possibility to reach intermediate sizes. For 3% or lower water concentration nanoparticles are of a needle-like shape and form a reddish suspension. In this case phase determination is problematic due to a small particle size with the thickness of roughly 3 nm. However, XRD studies indicate the presence of ferrihydrite. Coercivities of the materials are similar to those reported for nanoparticle magnetite powders, whereas the saturation magnetization values are considerably smaller.
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页码:7167 / 7176
页数:9
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共 156 条
  • [11] Yeh CS(2008)Solid-state synthesis of monocrystalline iron oxide nanoparticle based ferrofluid suitable for magnetic resonance imaging contrast application J Magn Magn Mater 320 2311-75
  • [12] Tsai CY(2000)Clinical experiences with magnetic drug targeting: a phase I study with 4′-epidoxorubicin in 14 patients with advanced solid tumors Appl Surf Sci 154–155 353-3072
  • [13] Wu CL(1981)Electro-precipitation of Fe IEEE Trans Magn 17 1247-216
  • [14] Wu MT(2007)O Sci Technol Adv Mater 8 71-358
  • [15] Shieh DB(1999) nanoparticles in ethanol J Mater Res 14 3066-1989
  • [16] Cumbal L(2003)Production of iron-oxide nanoparticles by laser-induced pyrolysis of gaseous precursors Mater Sci Eng C 23 211-39
  • [17] Greenleaf J(2005)Preparation of aqueous magnetic liquids in alkaline and acidic media J Magn Magn Mater 293 483-3924
  • [18] Leun D(2002)The effect of nanocrystalline magnetite size on arsenic removal Earth Planet Sci Lett 194 343-279
  • [19] SenGupta AK(2009)Magnetic properties of uniform gamma-Fe Nano Today 4 438-34
  • [20] Drits VA(2009)O J Nanopart Res 11 1981-170