Department for Materials Synthesis, Jožef Stefan Institute, 1000 Ljubljana, Slovenia.
J Phys Chem B. 2013 Feb 14;117(6):1644-50. doi: 10.1021/jp305256t. Epub 2012 Aug 7.
The alignment of plate-like barium ferrite nanoparticles, with diameters of 10-350 nm and thicknesses of 3-10 nm, in electric and/or magnetic fields was studied. Stable suspensions were prepared in 1-butanol with dodecylbenzenesulphonic acid as a surfactant. The deposits were produced from the suspensions with classic electrophoretic deposition, electrophoretic deposition in a magnetic field, and with drying in a magnetic field. The experiments, supported by theoretical calculations, show that the alignment of the nanoplates in the deposits was determined by the interplay between the hydrodynamic, electric, and magnetic forces. The preferential alignment of the nanoplates in plane with the substrate coincided with their magnetic orientation, and it increased with the shape anisotropy of the particles. The deposits were sintered at 1150 °C for 5 h to obtain ceramic films, which showed a magnetic orientation up to 90%.
研究了板状钡铁氧体纳米粒子(直径为 10-350nm,厚度为 3-10nm)在电场和/或磁场中的排列。在 1-丁醇中用十二烷基苯磺酸作为表面活性剂制备了稳定的悬浮液。通过经典电泳沉积、磁场中的电泳沉积和磁场干燥从悬浮液中制备沉积物。实验结果表明,纳米板在沉积物中的取向由水动力、电和磁场力之间的相互作用决定。纳米板优先与基底平面取向,且随着颗粒的形状各向异性的增加而增加。将沉积物在 1150°C 下烧结 5 小时以获得陶瓷膜,该陶瓷膜表现出高达 90%的磁取向。