Technische Universität München, Physik-Department, Lehrstuhl für Funktionelle Materialien, James-Franck-Straße 1, 85748 Garching, Germany.
Nanoscale. 2018 Jul 5;10(25):11930-11941. doi: 10.1039/c8nr02760a.
For sensor applications, superparamagnetic anisotropy is an indispensable property, which is typically achieved by employing an external field to guide the arrangement of magnetic nanoparticles (NPs). In the present investigation, the diblock copolymer polystyrene-block-poly(N-isopropylacrylamide) (PS-b-PNIPAM) is printed as a template to localize magnetic iron oxide NPs without any external field. Via microphase separation, cylindrical nanostructures of PS in a PNIPAM matrix are obtained, aligned perpendicular to the substrate. Since the magnetite NPs (Fe3O4) are functionalized with hydrophobic organic chains showing affinity to the PS blocks, they can selectively aggregate inside the PS cylinders. Moreover, solvent vapor annealing allows the achievement of nanostructures inside the hybrid system with a very high order, even at a high NP loading. Therefore, NPs can accumulate within PS domains to form perpendicularly aligned aggregates with high periodicity. The magnetic properties of the hybrid films are determined at various temperatures in two orthogonal directions (with PS cylinders vertical and parallel to the applied magnetic field). All hybrid films show superparamagnetism and a remarkable magnetic anisotropy is achieved at certain NP concentrations. This investigation shows a facile route to prepare superparamagnetic films with magnetic anisotropy and offers a novel possibility to future magnetic sensor fabrication.
对于传感器应用而言,超顺磁各向异性是不可或缺的特性,通常通过采用外部磁场来引导磁性纳米粒子(NPs)的排列来实现。在本研究中,两亲性嵌段共聚物聚苯乙烯-聚(N-异丙基丙烯酰胺)(PS-b-PNIPAM)被用作模板,在没有任何外部磁场的情况下定位磁性氧化铁 NPs。通过微相分离,得到了垂直于基底排列的 PS 在 PNIPAM 基质中的圆柱状纳米结构。由于磁性纳米粒子(Fe3O4)被具有与 PS 嵌段亲和力的疏水性有机链官能化,因此它们可以选择性地在 PS 圆柱内聚集。此外,溶剂蒸气退火允许在混合体系中实现具有非常高有序度的纳米结构,即使在高 NP 负载下也是如此。因此,NP 可以在 PS 畴内聚集,形成具有高周期性的垂直排列的聚集物。在两个正交方向(PS 圆柱垂直和平行于施加的磁场)下,在不同温度下测定了混合膜的磁性能。所有混合膜均表现出超顺磁性,并在特定 NP 浓度下实现了显著的磁各向异性。该研究展示了一种制备具有磁各向异性的超顺磁薄膜的简便方法,并为未来的磁性传感器制造提供了一种新的可能性。