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首页> 外文期刊>ACS nano >Probing the Effect of Molecular Nonuniformity in Directed Self-Assembly of Diblock Copolymers in Nanoconfined Space
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Probing the Effect of Molecular Nonuniformity in Directed Self-Assembly of Diblock Copolymers in Nanoconfined Space

机译:探索分子不均匀性对纳米封闭空间中二嵌段共聚物定向自组装的影响

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摘要

Various complex self-assembled morphologies of lamellar- and cylinder-forming block copolymers comprising poly(dimethylsiloxane)-b-polylactide (PDMS-b-PLA) confined in cylindrical channels were generated. Combining top-down lithography with bottom-up block copolymer self-assembly grants access to morphologies that are otherwise inaccessible with the bulk materials. Channel diameter (D) was systematically varied with four diblock copolymers having different compositions and bulk domain spacing (L-0), corresponding to a range of frustration ratios (D/L-0 from 2 to 4). Excessive packing frustration imposed by the channels leads to contorted domains. The resulting morphologies depend strongly on both D/L-0 and copolymer composition. Under several circumstances, mixtures of complex morphologies were observed, which hypothetically arise from the severe sensitivity to D/L-0 combined with the inherent compositional/molar mass dispersities associated with the nonuniform synthetic materials and silicon templates. Stochastic calculations offer compelling support for the hypothesis, and tractable pathways toward solving this apparent conundrum are proposed. The materials hold great promise for next-generation nanofabrication to address several emerging technologies, offering significantly enhanced versatility to basic diblock copolymers as templates for fabricating complex nanoscale objects.
机译:产生了限制在圆柱形通道中的包含聚(二甲基硅氧烷)-b-聚丙交酯(PDMS-b-PLA)的层状和圆柱状嵌段共聚物的各种复杂的自组装形态。将自上而下的光刻技术与自下而上的嵌段共聚物自组装相结合,可以访问散装材料无法达到的形态。通道直径(D)通过四种具有不同组成和本体畴间距(L-0)的二嵌段共聚物进行系统地变化,对应于一系列的失意率(D / L-0为2至4)。通道对包装的过度挫败会导致扭曲的区域。所得的形态在很大程度上取决于D / L-0和共聚物组成。在几种情况下,观察到复杂形态的混合物,假设是由于对D / L-0的高度敏感性以及与非均匀合成材料和硅模板相关的固有组成/摩尔质量分散性而产生的。随机计算为该假设提供了令人信服的支持,并提出了解决该明显难题的易处理路径。这些材料为下一代纳米制造提供了解决多种新兴技术的广阔前景,可显着提高基本二嵌段共聚物作为制造复杂纳米级物体的模板的多功能性。

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