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Janus second-order nonlinear optical dendrimers their controllable molecular topology and corresponding largely enhanced performance

机译:Janus二阶非线性光学树枝状刀可控分子拓扑,相应的大部分增强性能

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A new type of Janus dendrimers, consisting of two different side dendrons with the dipole orientation of the second-order nonlinear optical (NLO) chromophore moieties partially in a non-centrosymmetric direction, was intelligently designed and synthesized in order to enhance the macroscopic NLO performance and break through the limitation of NLO efficiency in the current molecular topological structure of azo chromophore-based polymers. This kind of Janus dendritic structure was constructed by the combination of convergent and divergent methods, with the utilization of a powerful “click chemistry reaction”. The obtained three dendrimers, D-13N , D-17N and D-21N , show very high NLO performance, especially the dramatically enhanced NLO coefficient of 299 pm V ~(?1) for D-13N , which is the highest value ever reported for polymers containing a simple azo chromophore. The new dendrimers provide a clear structure–properties relationship between high NLO efficiency and the controllable molecular topology with the non-centrosymmetrical alignment of dipole orientation, thus opening up a new avenue for the further development of NLO dendrimers with high performance and more importantly providing some clues for the rational design of functional dendrimers with controllable molecular topology.
机译:一种新型的Janus Dendrimers,由两种不同的侧面树枝组成,其中二阶非线性光学(NLO)发色部分部分处于非亚里索对称方向,智能地设计和合成,以增强宏观NLO性能并突破偶氮发色团聚合物电流分子拓扑结构中NLO效率的限制。这种Janus树突结构是由收敛和分歧方法的组合构建的,利用强大的“点击化学反应”。所获得的三个树枝状大分子,D-13N,D-17N和D-21n,显示出非常高的NLO性能,特别是对于D-13N的299μmV〜(α1)的显着增强的NLO系数,这是迄今为止的最高值对于含有简单的偶氮发色团的聚合物。新的树枝状大分子提供高NLO效率和可控分子拓扑之间的明显结构性质关系,与偶极偶联的非乘体对齐,从而开辟了一种新的途径,以实现高性能的NLO树枝状大分子,更重要的是提供一些具有可控分子拓扑结构的功能性树枝状大分子合理设计的线索。

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