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Shear-Aligned Block Copolymer Thin Films as Nanofabrication Templates

机译:剪切排列的嵌段共聚物薄膜作为纳米加工模板

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Block copolymers spontaneously self-assemble into highly regular nanostructures;in bulk,these structures include spheres packed on a body-centered cubic lattice and cylinders arranged on a hexagonal lattice,where the diameter of the spheres or cylinders (typically 10-100 nm) is readily tunable through the polymer's molecular weight.In ultrathin films containing a monolayer of these nanostructures,similar morphologies are adopted:two-dimensional hexagonally-packed sphere arrays,and striped patterns formed by in-plane cylinders.By exploiting the chemical differences between the two blocks,such films can be used as masks,where the patterns formed by the spheres or cylinders are ultimately replicated in another material (perhaps inorganic),such as semiconductor dots (spheres) or metal wires (cylinders).But while self-assembly can produce highly-regular local structures,it does not provide any global order or orientation;for example,the coherence length for a block copolymer cylinder is typically less than a micron.This limits the application of the arrays formed by block copolymer templating.Recently,we have developed methods to shear-align the spheres or cylinders in block copolymer thin films,where the nanodomains are oriented in a common direction over centimeter lengths and square-centimeter areas.Shear-aligned films of cylinder-formers,when converted to arrays of metal nanowires,provide broadband optical polarizers which function down into the ultraviolet.By directing the path of a nonsolvent fluid flowing over the block copolymer film,we can shape the direction of the nanodomains,creating complex user-defined patterns of cylinder orientation on the millimeter length scale.
机译:嵌段共聚物自发地自组装成高度规则的纳米结构;整体上,这些结构包括填充在以身体为中心的立方晶格上的球体和排列在六边形晶格上的圆柱体,其中球形或圆柱体的直径(通常为10-100 nm)为在包含这些纳米结构单层的超薄膜中,采用了相似的形态:二维六边形堆积的球形阵列,以及由平面圆柱体形成的条纹图案。通过利用两者之间的化学差异块,此类膜可用作掩膜,其中球体或圆柱体形成的图案最终会复制到另一种材料(也许是无机物)中,例如半导体点(球体)或金属线(圆柱体)。产生高度规则的局部结构,它不提供任何整体顺序或方向;例如,嵌段共聚物圆柱体的相干长度为典型值通常小于一微米。这限制了由嵌段共聚物模板形成的阵列的应用。最近,我们已经开发了将嵌段共聚物薄膜中的球或圆柱体剪切对齐的方法,其中纳米域在一个厘米以上的方向上取向剪切成柱状的成膜剂,当转换成金属纳米线阵列时,可提供宽带光学偏振器,其向下作用于紫外线。通过引导非溶剂流体流过嵌段共聚物膜的路径,我们可以调整纳米域的方向,从而在毫米长度范围内创建复杂的用户定义圆柱方向的模式。

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