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首页> 外文期刊>ACS Omega >Zero-Dimensional Carbon Allotropes—Carbon Nanoparticles Versus Fullerenes in Functionalization by Electronic Polymers for Different Optical and Redox Properties
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Zero-Dimensional Carbon Allotropes—Carbon Nanoparticles Versus Fullerenes in Functionalization by Electronic Polymers for Different Optical and Redox Properties

机译:零维碳同素异形体—碳纳米颗粒与富勒烯相比,在电子聚合物的官能化中具有不同的光学和氧化还原特性

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Fullerene cages are known as being able to participate in radical initiated copolymerization reactions with vinyl monomers for polymer-functionalized fullerenes. In this work, poly(N -vinylcarbazole) (PVK) was selected as a representative of electronic polymers in the functionalization of fullerene C_(60) by the same copolymerization reaction to yield the PVK–C_(60). Similarly found was that small carbon nanoparticles could also participate in the same copolymerization reaction for the nanoparticles to be surface-functionalized and -passivated by the attached PVK polymers, which are structurally adhering to the general definition on carbon dots (CDots), thus PVK–CDots. In the comparison between PVK–CDots and PVK–C_(60), the former was found to be more absorptive and therefore more effective in photon harvesting across the visible spectral region and also brightly fluorescent, orders of magnitude more so than the latter. Similar to the PVK–C_(60) and C_(60) cages in general, the PVK–CDots exhibited significant photoinduced electron accepting characteristics and, at the same time, also extraordinary electron donating abilities that are not available to fullerenes. Because fullerene-based composites with electronic polymers including PVK have found significant applications in optoelectronic devices and systems, the prospect of CDots represented by the PVK–CDots for similar purposes is discussed.
机译:富勒烯笼被认为能够参与与乙烯基单体的自由基引发的共聚反应,以进行聚合物官能化的富勒烯。在这项工作中,通过相同的共聚反应选择聚(N-乙烯基咔唑)(PVK)作为富勒烯C_(60)官能化中电子聚合物的代表,以生产PVK-C_(60)。同样发现,小的碳纳米粒子也可能参与相同的共聚反应,从而使纳米粒子通过附着的PVK聚合物进行表面官能化和钝化,该结构在结构上遵循碳点(CDots)的一般定义,因此PVK – CDots。在PVK–CDots和PVK–C_(60)之间的比较中,发现前者具有更强的吸收性,因此在可见光谱区域内的光子收集方面更有效,并且还具有明亮的荧光性,比后者要好几个数量级。通常,与PVK–C_(60)和C_(60)笼类似,PVK–CDots表现出显着的光诱导电子接受特性,同时还具有富勒烯无法获得的非凡的给电子能力。由于具有电子聚合物(包括PVK)的富勒烯基复合材料已在光电器件和系统中获得重要应用,因此讨论了以PVK-CDots为代表的CDots用于类似目的的前景。

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