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Complex nanostructured materials from segmented copolymers prepared by ATRP

机译:由ATRP制备的嵌段共聚物的复杂纳米结构材料

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The development of new controlled/living radical polymerization processes, such as Atom Transfer Radical Polymerization (ATRP) and other techniques such as nitroxide mediated polymerization and degenerative transfer processes, including RAFT. opened the way to the use of radical polymerization for the synthesis of well-defined, complex functional nanostructures. The development of such nanostructures is primarily dependent on self-assembly of well-defined segmented copolymers. this article describes the fundamentals of ATRP, relevant to the synthesis of such systems. The self-assembly of block copolymers prepared by ATRP is illustrated by three examples. In the first, block copolymers prepared by ATRP is illustrated by three examples. In the first, block copolymers of poly(butyl acrylate) with polyacrylonitrile phase separate, leading to spherical, cylindrical or lamellar morphologies, depending on the block copolymer composition. At a higher temperature, polyacrylonitrile block converts to nanostructured carbon clusters, whereas poly(butyl acrylate) block serves as a sacrificial block, abiding the development of designed nanostructures. In the second example, conductive nanoribbons of poly (n-hexylthiophene) surrounded by a matrix of organic polymers are formed from block copolymers prepared by ATRP. The third example describes an inorganic-organic hybrid system consisting of hard nanocolloidal silica particles (~20 nm) grafted by ATRP with well-defined polystyrene-poly (benzyl acrylater) block copolymer chains (~100 chains per particle). Silica cores in this system are surrounded by a rigid polystyrene inner shell and softer polyacrylate outer shell.
机译:开发了新的受控/活性自由基聚合工艺,例如原子转移自由基聚合(ATRP)和其他技术,例如氮氧化物介导的聚合和简并转移工艺,包括RAFT。开启了使用自由基聚合反应来合成定义明确的复杂功能纳米结构的方式。这种纳米结构的发展主要取决于明确定义的嵌段共聚物的自组装。本文介绍了与此类系统的综合相关的ATRP基础。由ATRP制备的嵌段共聚物的自组装通过三个实例说明。首先,通过三个实施例说明由ATRP制备的嵌段共聚物。首先,取决于嵌段共聚物的组成,聚(丙烯酸丁酯)与聚丙烯腈相的嵌段共聚物分离,导致球形,圆柱形或层状形态。在较高的温度下,聚丙烯腈嵌段转化为纳米结构的碳簇,而聚丙烯酸丁酯嵌段用作牺牲嵌段,从而阻止了设计纳米结构的发展。在第二个示例中,由ATRP制备的嵌段共聚物形成被有机聚合物基质包围的聚(正己基噻吩)的导电纳米带。第三个示例描述了一种无机-有机杂化体系,该体系由ATRP接枝的硬纳米胶体二氧化硅颗粒(约20 nm)与定义明确的聚苯乙烯-聚(丙烯酸苄酯)嵌段共聚物链(每个颗粒约100条链)组成。该系统中的硅胶芯被刚性的聚苯乙烯内壳和较软的聚丙烯酸酯外壳所包围。

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