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Confined Pattern-Directed Assembly of Polymer-Grafted Nanoparticles in a Phase Separating Blend with a Homopolymer Matrix

机译:与均聚物基质在相分离共混物中的聚合物接枝纳米颗粒的受限模式定向组装

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摘要

The controlled organization of nanoparticle (NP) constituents into superstructures of well-defined shape, composition and connectivity represents a continuing challenge in the development of novel hybrid materials for many technological applications. We show that the phase separation of polymer-tethered nanoparticles immersed in a chemically different polymer matrix provides an effective and scalable method for fabricating defined submicron-sized amorphous NP domains in melt polymer thin films. We investigate this phenomenon with a view towards understanding and controlling the phase separation process through directed nanoparticle assembly. In particular, we consider isothermally annealed thin films of polystyrene-grafted gold nanoparticles (AuPS) dispersed in a poly(methyl methacrylate) (PMMA) matrix. Classic binary polymer blend phase separation related morphology transitions, from discrete AuPS domains to bicontinuous to inverse domain structure with increasing nanoparticle composition is observed, yet the kinetics of the AuPS/PMMA polymer blends system exhibit unique features compared to the parent PS/PMMA homopolymer blend. We further illustrate how to pattern-align the phase-separated AuPS nanoparticle domain shape, size and location through the imposition of a simple and novel external symmetry-breaking perturbation via soft-lithography. Specifically, submicron-sized topographically patterned elastomer confinement is introduced to direct the nanoparticles into kinetically controlled long-range ordered domains, having a dense yet well-dispersed distribution of non-crystallizing nanoparticles. The simplicity, versatility and roll-to-roll adaptability of this novel method for controlled nanoparticle assembly should make it useful in creating desirable patterned nanoparticle domains for a variety of functional materials and applications.
机译:纳米颗粒(NP)成分的受控组织成为形状,组成和连接性明确的超结构,这代表了在用于许多技术应用的新型混合材料开发中的持续挑战。我们表明浸没在化学上不同的聚合物基质中的聚合物束缚的纳米粒子的相分离提供了一种有效且可扩展的方法,用于在熔融聚合物薄膜中制造定义的亚微米尺寸的非晶NP域。我们调查这种现象,以期通过定向纳米粒子组装来理解和控制相分离过程。特别是,我们考虑了分散在聚甲基丙烯酸甲酯(PMMA)基质中的聚苯乙烯接枝金纳米颗粒(AuPS)的等温退火薄膜。观察到经典的二元聚合物共混物与相分离有关的形态学变化,从离散的AuPS域到双连续到逆域结构,随着纳米粒子组成的增加,然而与母体PS / PMMA均聚物共混物相比,AuPS / PMMA聚合物共混体系的动力学表现出独特的功能。我们进一步说明了如何通过软光刻通过简单而新颖的外部对称性破坏扰动的方式来对相分离的AuPS纳米颗粒域的形状,大小和位置进行图案对准。具体地,引入亚微米尺寸的地形图图案化的弹性体限制,以将纳米颗粒引导到动力学控制的长程有序域中,该区域具有非结晶纳米颗粒的密集而良好分散的分布。这种用于受控纳米颗粒组装的新颖方法的简单性,多功能性和卷对卷适应性应使其可用于创建各种功能材料和应用的理想图案化纳米颗粒域。

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