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Carbon nanotube-templated assembly of regioregular poly(3-alkylthiophene) in solution

机译:碳纳米管模板的区域规则聚(3-烷基噻吩)在溶液中的组装

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Control of structural heterogeneity by rationally encoding of the molecular assemblies is a key enabling design of hierarchical, multifunctional materials of the future. Here we report the strategies to gain such control using solution-based assembly to construct a hybrid nano-assembly and a network hybrid structure of regioregular poly(3-alkylthiophene) - carbon nanotube (P3AT-CNT). The opto-electronic performance of conjugated polymer (P3AT) is defined by the structure of the aggregate in solution and in the solid film. Control of P3AT aggregation would allow formation of broad range of morphologies with very distinct electro-optical. We utilize interactive templating to confine the assembly behavior of conjugated polymers, replacing poorly controlled solution processing approach. Perfect crystalline surface of the single-walled and multi-walled carbon nanotube (SWCNT/MWCNT) acts as a template, seeding P3AT aggregation of the surface of the nanotube. The seed continues directional growth through pi-pi stacking leading to the formation of to well-defined P3AT-CNT morphologies, including comb-like nano-assemblies, superstructures and gel networks. Interconnected, highly-branched network structure of P3AT-CNT hybrids is of particular interest to enable efficient, long-range, balanced charge carrier transport. The structure and opto-electionic function of the intermediate assemblies and networks of P3AT/CNT hybrids are characterized by transmission election microscopy and UV-vis absorption.
机译:通过合理编码分子组装来控制结构异质性是实现未来的分层多功能材料设计的关键。在这里,我们报告使用基于解决方案的程序集来构建混合纳米程序集和区域规则的聚(3-烷基噻吩)-碳纳米管(P3AT-CNT)的网络混合结构,以获得这种控制的策略。共轭聚合物(P3AT)的光电性能由溶液和固体膜中聚集体的结构决定。 P3AT聚集的控制将允许形成具有非常不同的电光的各种形态。我们利用交互式模板来限制共轭聚合物的组装行为,取代了控制不佳的溶液处理方法。单壁和多壁碳纳米管(SWCNT / MWCNT)的完美晶体表面充当模板,为纳米管表面的P3AT聚集提供了种子。种子通过pi-pi堆叠继续定向生长,导致形成明确的P3AT-CNT形态,包括梳状纳米组件,超结构和凝胶网络。 P3AT-CNT杂化体的互连,高度分支的网络结构特别令人关注,可以实现高效,远程,平衡的电荷载流子传输。 P3AT / CNT杂化物的中间组件和网络的结构和光电选择功能的特征在于透射电子显微镜和紫外可见吸收。

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