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Polymer Network Formation Using the Phosphane-ene Reaction: A Thiol-ene Analogue with Diverse Postpolymerization Chemistry

机译:使用磷烯反应的聚合物网络形成:具有不同后聚合化学性质的硫醇-烯类似物

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摘要

Air-stable primary phosphines were photopolymerized using phosphane-ene chemistry, the phosphorus analogue of the thiolene reaction, to fabricate a completely new class of polymer networks. It was demonstrated that the tunable thermal and physical properties accessible using thiol-ene chemistry could also be achieved using an analogous phosphane-ene reaction. At the same time, the presence of the P-31 nucleus that is easily observed using NMR spectroscopy allowed the chemical structures of the networks to be directly probed using solid state NMR spectroscopy. Following its incorporation into the network, phosphorus offers the distinct difference and advantage of being able to undergo a diverse array of further derivatization to afford functional materials. For example, the networks were demonstrated to serve as effective oxygen scavengers and to bind transition metals (e.g., Pd). By using the air stable ferrocenyl phosphine (FcCH(2)CH(2))PH2, redox-active networks were produced and these materials could be pyrolyzed to yield magnetic ceramics. Overall, this demonstrates the promise of phosphane-ene chemistry as an alternative to thiol-ene systems for providing functional materials for a diverse range of applications.
机译:使用硫烷反应的磷类似物膦-烯化学,将空气稳定的伯膦进行光聚合,以制造一类全新的聚合物网络。已经证明,使用类似的膦-烯反应也可以实现使用硫醇-烯化学可及的可调的热和物理性质。同时,使用NMR光谱可以轻松观察到P-31核的存在,因此可以使用固态NMR光谱直接探测网络的化学结构。将磷掺入网络后,磷具有明显的区别和优势,能够进行各种进一步的衍生化处理,以提供功能材料。例如,证明该网络可以用作有效的除氧剂并结合过渡金属(例如,Pd)。通过使用空气稳定的二茂铁基膦(FcCH(2)CH(2))PH2,可以产生氧化还原活性网络,并且可以将这些材料热解生成磁性陶瓷。总的来说,这证明了膦-烯化学有望成为硫醇-烯体系的替代品,从而为各种应用提供功能性材料。

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