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电液动力射流印刷形成的聚合物毛刷纳米尺度图案上的嵌段共聚物组装

Block Copolymer Assembly on Nanoscale Patterns of Polymer Brushes Formed by Electrohydrodynamic Jet Printing

作者:M. Serdar Onses;Abelardo Ramírez-Hernández;Su-Mi Hur;Erick Sutanto;Lance Williamson;Andrew G. Alleyne;Paul F. Nealey;Juan J. de Pablo;John A. Rogers;

关键词:block copolymers,electrohydrodynamic jet printing,nanofabrication,polymer brushes,simulation

DOI:https://doi.org/10.1021/nn5022605

发表时间:2014年

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摘要

嵌段共聚物(BCPs)领域的自组装的基本理解以及对这些过程的控制能力对它们在各种应用中作为纳米尺度模板至关重要。本文着重研究了自旋铸和印刷的聚(苯乙烯-甲基丙烯酸甲酯)BCPs在电液动力喷墨印刷形成的图案表面润湿层上的自组装。在此处,端点嵌接刷子以纳米尺度分辨率几何确定地定义了BCP纳米结构的形态。这些材料和方法还可以与光刻定义的模板集成,用于在多个长度尺度上指导BCPs的自组装。结果不仅提供了控制复杂图案形成的工程路径,还为化学转变对自组装过程的影响进行实验和模拟研究提供了工具。特别是,我们表明这里发展的方法提供了探索BCPs润湿行为显示的异类现象的手段,其中三维柔性约束、链弹性、界面能量和基底表面能共同产生非经典的润湿行为。


Abstract

Fundamental understanding of the self-assembly of domains in block copolymers (BCPs) and capabilities in control of these processes are important for their use as nanoscale templates in various applications. This paper focuses on the self-assembly of spin-cast and printed poly(styrene-block-methyl methacrylate) BCPs on patterned surface wetting layers formed by electrohydrodynamic jet printing of random copolymer brushes. Here, end-grafted brushes that present groups of styrene and methyl methacrylate in geometries with nanoscale resolution deterministically define the morphologies of BCP nanostructures. The materials and methods can also be integrated with lithographically defined templates for directed self-assembly of BCPs at multiple length scales. The results provide not only engineering routes to controlled formation of complex patterns but also vehicles for experimental and simulation studies of the effects of chemical transitions on the processes of self-assembly. In particular, we show that the methodology developed here provides the means to explore exotic phenomena displayed by the wetting behavior of BCPs, where 3-D soft confinement, chain elasticity, interfacial energies, and substrate’s surface energy cooperate to yield nonclassical wetting behavior.