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两亲嵌段共聚物-磁赤铁矿纳米粒子杂化薄膜的自组装。

Self-assembly of diblock copolymer-maghemite nanoparticle hybrid thin films.

机构信息

Technische Universität München , Physik-Department, Lehrstuhl für Funktionelle Materialien, James-Franck-Str. 1, 85748 Garching, Germany.

出版信息

ACS Appl Mater Interfaces. 2014 Oct 22;6(20):18152-62. doi: 10.1021/am505143h. Epub 2014 Oct 3.

Abstract

The arrangement of maghemite (γ-Fe2O3) nanoparticles (NPs) in poly(styrene-d8-block-n-butyl methacrylate) P(Sd-b-BMA) diblock copolymer (DBC) films via a self-assembly process was investigated toward the fabrication of highly ordered maghemite-polymer hybrid thin films. The resulting thin films exhibited a perforated lamella with an enrichment layer containing NPs as investigated with X-ray reflectometry, scanning electron microscopy, atomic force microscopy, and time-of-flight grazing incidence small angle neutron scattering as a function of the NP concentrations. The NPs were selectively deposited in the PSd domains of the DBC during the microphase separation process. At low NP concentrations, the incorporation of the NPs within the DBC thin films resulted in an enhanced microphase separation process and formation of highly oriented and ordered nanostructured hybrid films. At higher NP concentrations, the aggregation of the NPs was dominating and large sized metal oxide clusters were observed. The superparamagnetic properties of the metal oxide-polymer hybrid films at various NP concentrations were probed by a superconducting quantum interference device magnetometer, which shows that the hybrid films are highly attractive for optical devices, magnetic sensors, and magnetic recording devices.

摘要

通过自组装过程将磁赤铁矿(γ-Fe2O3)纳米颗粒(NPs)排列在聚苯乙烯-d8-嵌段-正丁基甲基丙烯酸酯 P(Sd-b-BMA)两嵌段共聚物(DBC)薄膜中,以制备高度有序的磁赤铁矿-聚合物杂化薄膜。通过 X 射线反射率、扫描电子显微镜、原子力显微镜和飞行时间掠入射小角中子散射研究了所得薄膜的层状结构,结果表明,随着 NPs 浓度的增加,存在含有 NPs 的富集层。在微相分离过程中, NPs 被选择性地沉积在 DBC 的 PSd 区。在低 NP 浓度下,NP 掺入 DBC 薄膜中导致微相分离过程增强并形成高度取向和有序的纳米结构杂化薄膜。在较高的 NP 浓度下,NP 的聚集占主导地位,并且观察到较大尺寸的金属氧化物簇。通过超导量子干涉器件磁强计探测了不同 NP 浓度下金属氧化物-聚合物杂化薄膜的超顺磁性,结果表明杂化薄膜在光学器件、磁传感器和磁记录设备方面具有很大吸引力。

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