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Thermal analysis studies of doping effects on the conformational motions of polymer chains in solid solutions with lasing molecules

机译:掺杂对激光分子固溶体中聚合物链构象运动影响的热分析研究

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The advancement of the solid-state dye laser performance largely depends on the systematic study of the dye-matrix interactions at the nanoscopic scale. The current work deals with blends of a comparatively inert dye host, poly (methyl methacrylate) (PMMA), with nonionic/apolar (substituted perylenes) and ionic/polar (rhodamine 6G, pyrromethene 567) dyes at ≈10~(-4) mol L~(-1) loading. Differential scanning calorimetry (DSC) and thermally stimulated currents (TSC) were used to explore the relative strength of inter- and intramolecular guest-host interactions by monitoring blending-induced modifications of the high-temperature signals: the segmental relaxation, the space-charge relaxation, and the liquid-liquid transition. Both techniques revealed the antiplasticizing role of the oligomeric organics on the relaxation dynamics of polymer segments, evidenced by clear glass-transition temperature upshifts. It becomes apparent that this effect is independent of the size, polarity, and ionicity of the dopant, signifying a common mechanism underway. It is suggested that, at least for the dyes under investigation, the chromophores simply fill the voids within the matrix, imposing strong steric hindrances on the rearrangement of the long-range structure. A comparison between the present results and earlier low-temperature dielectric data reveals that the large-scale relaxation dynamics show stronger perturbations due to blending, in comparison to the localized rotational motion of the pendant groups. DSC provided estimates for the unconverted monomer percentages in the solid blends. These were also determined more accurately by nuclear magnetic resonance (NMR), which additionally confirmed that the tacticity of the chains is not affected by the presence of the dye.
机译:固态染料激光性能的提高很大程度上取决于对纳米尺度上染料-基质相互作用的系统研究。当前的工作是处理一种相对惰性的染料主体聚甲基丙烯酸甲酯(PMMA)与非离子/非极性(取代的per)和离子/极性(若丹明6G,吡咯亚甲基567)染料的混合物,其≈10〜(-4)摩尔L〜(-1)负载。差示扫描量热法(DSC)和热激发电流(TSC)用于通过监测高温信号的混合诱导修饰来探索分子间和分子内客体-宿主相互作用的相对强度:节段弛豫,空间电荷松弛,以及液-液过渡。两种技术都揭示了低聚有机物对聚合物链段松弛动力学的抗塑化作用,这由明显的玻璃化转变温度上移证明。显然,这种效应与掺杂剂的尺寸,极性和离子性无关,这表明正在进行的一种常见机理。建议至少对于所研究的染料,发色团仅填充基质内的空隙,对长距离结构的重排施加强的空间位阻。当前结果与早期低温介电数据之间的比较表明,与悬垂基团的局部旋转运动相比,由于混合,大规模弛豫动力学显示出更强的扰动。 DSC提供了固体混合物中未转化单体百分比的估算值。这些还通过核磁共振(NMR)更准确地确定,这进一步证实了链的立构规整度不受染料存在的影响。

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