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Small Change, Big Impact: The Shape of Precursor Polymers Governs Poly-p-phenylene Synthesis

机译:变化小,影响大:前体聚合物的形状治理聚对亚苯基合成

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The synthesis of unsubstituted, structurally perfect poly(para-phenylene) (PPP) has remained elusive for many decades. By modifying our previously reported precursor route towards PPP, we were able to simplify and optimize the precursor polymer synthesis and yields, the thermal conversion process to PPP, and the resulting material properties. We describe the synthesis of unprecedented anti-dialkoxycyclohexadienylenes, polymerized via Suzuki coupling to yield linear PPP precursor polymers. Changing the geometry and overall shape of the precursor viz upon going from syn- to anti-configuration of the monomer has two important consequences: (i) formation of the precursor polymer becomes more selective since cyclization of the monomer is no longer possible and (ii) the precursor polymer adopts a "stretched" geometry and becomes more similar to the rigid-rod of PPP, impacting the aromatization process and material properties. Films of the precursor polymers are thermally aromatized via dealkoxylation to yield structurally perfect and highly ordered, insoluble PPP. Long-range ordering within the thin films, not observed for its syn-analog, is induced as evidenced by atomic force microscopy, X-ray scattering, and IR and UV-vis/photoluminescence spectroscopy. The aromatization temperature, now feasible for fabrication of plastic devices, is significantly lowered from previously reported 300 degrees C to below 250 degrees C. The kinetics of the aromatization process were monitored via time-dependent IR measurements at different annealing temperatures, showing much faster quantitative aromatization for thin layers.
机译:未取代的结构完美的聚(Para-亚苯基)(PPP)的合成仍然难以多十年。通过修改先前报道的PPP前体途径,我们能够简化和优化前体聚合物合成和产率,热转化过程至PPP,以及所得的材料特性。我们描述了前所未有的抗二烷基氧基环己二苯烷基的合成,通过铃木偶联聚合,得到线性PPP前体聚合物。从单体的Syn-on抗构型开始改变前体viz的几何形状和整体形状具有两个重要的后果:(i)前体聚合物的形成变得更加选择,因为单体的环化不再可能并且(II )前体聚合物采用“拉伸”几何形状,变得更类似于PPP的刚性棒,影响芳族化工艺和材料特性。前体聚合物的薄膜通过癸氧化得到热芳香化,得到结构上完美和高度有序的不溶性PPP。如原子力显微镜,X射线散射和IR和UV-VIS /光致发光光谱,所以诱导未观察到其同步模拟的薄膜内的远程排序。现在,芳族化温度,现在可用于塑料装置的制造,从先前报告的300度C至低于250℃。通过在不同退火温度下通过时间依赖的红外测量监测芳族化过程的动力学,显示得更快的定量薄层的芳香化。

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