Department of Polymer Engineering, The University of Akron , Akron, Ohio 44325, United States.
Chemistry Department, Faculty of Science, King Saud University , PO Box 2455, Riyadh 11451, Saudi Arabia.
ACS Appl Mater Interfaces. 2017 Mar 29;9(12):11290-11298. doi: 10.1021/acsami.7b02186. Epub 2017 Mar 17.
Magnetic nanoparticle chains are found in biosystems, such as in the brain of migratory birds. Inspired by natural assemblies, in a novel approach, the facile assembly of magnetically aligned polymer grafted cobalt nanoparticle (MPGNP) chains in thin polymer films was accomplished by using low strength permanent magnets directly during the flow-casting process. Unlike previous studies of MPGNP chain alignment in the high viscosity melt phase, the high mobility of such dispersed MPGNPs during casting by magnetic flow coating of polystyrene (PS) nanocomposite thin films from a dispersion allowed for formation of well-aligned MPGNP chains at the PS film/air interface. Both spherical (symmetric) and cylindrical (asymmetric) MPGNP aligned chains were obtained with distinct properties. The average chain length and width, number of particles per chain, spacing between parallel chains, and chain alignment were quantified using surface probe and electron microscopy, and grazing incidence X-ray. The aligned chains did not randomize when annealed above the film glass temperature, apparently due to the high translational entropic barrier for macroscopic (GISAXS) chain realignment. The Young's bending modulus of the aligned MPGNP nanocomposite films as revealed by a thin film wrinkling metrology showed that the elastic modulus along the chain axis direction was higher for the film with the cylindrical but not the spherical MPGNP chains. This suggests that PGNP chain flexural properties depend on asymmetry of the local MPGNP unit, much like the persistence length "stiffness" effect of polymer chains. The ferromagnetic nature of the aligned PGMNP chains resulted in film rotation, as well as repulsive and attractive translation under an applied external magnetic field. Such magnetically responsive films can be useful for sensors and other applications.
磁性纳米粒子链存在于生物体系中,如候鸟的大脑中。受自然组装的启发,采用一种新方法,在流动铸造过程中直接使用弱磁场永磁体,在薄聚合物膜中实现了磁性排列的聚合物接枝钴纳米粒子(MPGNP)链的简易组装。与之前在高粘度熔融相中对 MPGNP 链取向的研究不同,在磁场流延涂布聚苯乙烯(PS)纳米复合材料薄膜过程中,分散的 MPGNP 具有很高的迁移率,允许在 PS 薄膜/空气界面形成取向良好的 MPGNP 链。通过这种方法得到了具有明显不同特性的球形(对称)和圆柱形(非对称)的 MPGNP 取向链。使用表面探针和电子显微镜以及掠入射 X 射线,对平均链长和宽度、每个链的粒子数、平行链之间的间距以及链取向进行了定量分析。取向链在高于膜玻璃化转变温度退火时不会发生随机化,这显然是由于宏观(GISAXS)链重排的高平移熵垒所致。通过薄膜起皱计量法揭示的取向 MPGNP 纳米复合材料薄膜的杨氏弯曲模量表明,具有圆柱形而不是球形 MPGNP 链的薄膜,其沿链轴方向的弹性模量更高。这表明 PGNP 链的弯曲性能取决于局部 MPGNP 单元的不对称性,就像聚合物链的持久长度“刚度”效应一样。取向的 PGMNP 链的铁磁性质导致了薄膜的旋转,以及在施加的外磁场下的排斥和吸引平移。这种对磁场有响应的薄膜可用于传感器和其他应用。