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Stretchable and luminescent networks from copper(I)-coordinated main-chain thioether polymers

机译:来自铜(I)的可拉伸和发光网络 - 基准的主链硫醚聚合物

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Emissive organometallic polymers integrated with the properties of conventional polymers have attracted increasing attention from researchers. Copper (I)-thioether (Cu(I)-thioether) complexes of small molecule has been extensively reported, which is in sharply contrast with much less investigated Cu(I)-thioether polymers. In this work, Cu(I)-thioether coordination structure has been successfully combined with polymer ligands to form emissive polymer networks. The resulted hybrid networks overcame many challenges in the Cu(I)-thioether small compounds. The as-prepared Cu(I)-thioether networks exhibited much improved thermal stability (degradation temperature: 220 degrees C) compared with Cu(I)-thioether molecular clusters. Besides, the Cu(I)-thioether networks can be processed into uniform free-standing film with excellent stretchability (breaking strain up to 200%) which cannot be realized in the Cu(I)-thioether small molecular system. Finally, the luminescent property of copper-thiother was inherited in the polymer networks and emissive polymer films with good transparency, excellent thermal stability and high stretchability. Interestingly, the dynamic coordination between thioether and copper (I) enabled the self-healing ability of the polymer films. The damaged emissive and stretchable films were able to be autonomous self-healed under ambient conditions. This work sheds lights on the design and fabrication of Cu(I)-thioether materials for advanced applications.
机译:与常规聚合物性质集成的发光有机金属聚合物引起了研究人员的越来越关注。已经广泛报道了小分子的铜(I) - 硫醚(Cu(I) - 硫醚)复合物,其与较小的研究Cu(I) - 硫醚聚合物急剧造影。在这项工作中,Cu(I) - 硫醚配位结构已成功与聚合物配体结合形成发光聚合物网络。得到的混合网络克服了Cu(I) - 硫烷化合物中的许多挑战。与Cu(I) - 硫醚分子簇相比,如制备的Cu(I) - 硫醚网络表现出大量提高的热稳定性(降解温度:220℃)。此外,Cu(I) - 硫醚网络可以加工成均匀的独立膜,其具有优异的拉伸性(断裂应变高达200%),其在Cu(I) - 硫醚小分子系统中不能实现。最后,铜 - Thiother的发光特性在聚合物网络和发光聚合物膜中遗传,具有良好的透明度,优异的热稳定性和高拉伸性。有趣的是,硫醚和铜(I)之间的动态配位使得聚合物膜的自愈合能力。受损的发光和可拉伸薄膜能够在环境条件下自主愈合。这项工作揭示了Cu(I)-ThioHether材料的设计和制作用于先进应用的设计和制造。

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