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Radical Cations in Versatile High Performance Initiating Systems for Thermal, Redox, and Photopolymerizations

机译:多功能高性能启动系统的激进阳离子,用于热,氧化还原和光聚合

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摘要

Highly versatile initiating systems for thermal, redox, and photopolymerization processes are proposed. The photopolymerization using the multifunctional amine tris[4-(diethylamino)phenyl]amine (t4epa) and iodonium salt (Iod) as photoinitiating system (PIS) is presented. Methacrylate function conversion up to 84% was reached under LED@850 nm using t4epa/Iod/phosphine PIS when only 60% was possible for the same resin using a commercial camphorquinone/amine/phosphines blue light (470 nm) PIS showing that longer wavelengths can be used with high final performances. Estimation of the balance between photothermal vs photoinduced electron transfer processes to initiate polymerization was performed exhaustively thanks to thermal imaging, Raman confocal microscopy, FTIR, cyclic voltammetry, UV-vis-NIR spectroscopy, ESR, ESR-ST photolysis, DSC, photo-DSC, and molecular modeling. This method can be used in further works interested in photochemical/thermal processes as it allowed to highlight two unusual reactivity features: (i) the in situ creation of a bicomponent thermal initiator (potentially occurring in several other systems) and (ii) the estimation of light-induced heating rates. Remarkably, a NIR light-absorbing radical cation is responsible for the photoreaction and the high photoinitiating performance. Interestingly, in parallel and without light, the first pure organic peroxide-free redox radical initiating system based on the proposed t4epa/Iod combination will be presented; that is, performances similar to or better than harmful/unstable peroxide-based redox (or thermal) initiating systems are obtained.
机译:提出了用于热,氧化还原和光聚合过程的高度通用启动系统。呈递使用多官能胺Tris [4-(二乙基氨基)苯基]胺(T4ePa)和碘鎓盐(IOD)作为光引发系统(PIS)的光聚合。在使用T4EPA / IOD /膦PIS的LED @ 850nm下达到84%的甲基丙烯酸酯功能转化,当使用商用樟脑酮/胺/磷油蓝光(470nm)PIS的相同树脂仅为60%,显示较长波长可用于高最终表演。通过热成像,拉曼共聚焦显微镜,FTIR,循环伏安法,UV-Vis-Nir光谱,ESR,ESR-ST光解,DSC,Photo-DSC,估算光热导致电子转移过程与引发聚合之间的平衡估计。和分子建模。该方法可用于对光化学/热进程的进一步作品,因为它允许突出两个不寻常的反应性特征:(i)原位创建双组分热引发剂(可能在几个其他系统中发生)和(ii)估计光引起的加热速率。值得注意的是,NIR光吸收自由基阳离子负责光反应和高光引发性能。有趣的是,在平行且没有光的情况下,将提出基于所提出的T4ePA / IOD组合的第一纯有机过氧化物氧化还原自由基启动系统;即,获得与基于有害/不稳定的过氧化物基氧化还原(或热)启动系统类似或更好的性能。

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