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具有致密磁性纳米结构的印刷超薄双嵌段共聚物薄膜

Printed Thin Diblock Copolymer Films with Dense Magnetic Nanostructure.

作者信息

Xia Senlin, Song Lin, Chen Wei, Körstgens Volker, Opel Matthias, Schwartzkopf Matthias, Roth Stephan V, Müller-Buschbaum Peter

机构信息

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

Institute of Flexible Electronics , Northwestern Polytechnical University , West Youyi Road 127 , 710072 , Xi'an , Shanxi China.

出版信息

ACS Appl Mater Interfaces. 2019 Jun 19;11(24):21935-21945. doi: 10.1021/acsami.9b06573. Epub 2019 Jun 10.

Abstract

Thin hybrid films with dense magnetic structures for sensor applications are printed using diblock copolymer (DBC) templating magnetic nanoparticles (MNPs). To achieve a high-density magnetic structure, the printing ink is prepared by mixing polystyrene- block-poly(methyl methacrylate) (PS- b-PMMA) with a large PS volume fraction and PS selective MNPs. Solvent vapor annealing is applied to generate a parallel cylindrical film morphology (with respect to the substrate), in which the MNP-residing PS domains are well separated by the PMMA matrix, and thus, the formation of large MNP agglomerates is avoided. Moreover, the morphologies of the printed thin films are determined as a function of the MNP concentration with real and reciprocal space characterization techniques. The PS domains are found to be saturated with MNPs at 1 wt %, at which the structural order of the hybrid films reaches a maximum within the studied range of MNP concentration. As a beneficial aspect, the MNP loading improves the morphological order of the thin DBC films. The dense magnetic structure endows the thin films with a faster superparamagnetic responsive behavior, as compared to thick films where identical MNPs are used, but dispersed inside the minority domains of the DBC.

摘要

用于传感器应用的具有致密磁性结构的超薄混合薄膜是使用双嵌段共聚物(DBC)模板化磁性纳米颗粒(MNP)印刷而成的。为了实现高密度磁性结构,通过将聚苯乙烯-嵌段-聚(甲基丙烯酸甲酯)(PS-b-PMMA)与大体积分数的PS和PS选择性MNP混合来制备印刷油墨。采用溶剂蒸汽退火来产生平行圆柱状薄膜形态(相对于基底),其中含有MNP的PS域被PMMA基体很好地分隔开,因此避免了大的MNP团聚体的形成。此外,利用实空间和倒易空间表征技术确定印刷薄膜的形态是MNP浓度的函数。发现PS域在1 wt%时被MNP饱和,此时混合薄膜的结构有序度在所研究的MNP浓度范围内达到最大值。作为一个有益的方面,MNP负载提高了超薄DBC薄膜的形态有序度。与使用相同MNP但分散在DBC少数域内的厚膜相比,致密磁性结构赋予薄膜更快的超顺磁响应行为。

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