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Polymer Labelling with a Conjugated Polymer-Based Luminescence Probe for Recycling in the Circular Economy

机译:使用基于共轭聚合物的发光探针进行聚合物标记用于循环经济中的回收

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摘要

In this paper, we present the use of a disubstituted polyacetylene with high thermal stability and quantum yield as a fluorescence label for the identification, tracing, recycling, and eventually anti-counterfeiting applications of thermoplastics. A new method was developed for the dispersion of poly[1-phenyl-2-[p-(trimethylsilyl)phenyl]acetylene] (PTMSDPA) into polymer blends. For such purposes, four representative commodity plastics were selected, i.e., polypropylene, low-density polyethylene, poly(methyl methacrylate), and polylactide. Polymer recycling was mimicked by two reprocessing cycles of the material, which imparted intensive luminescence to the labelled polymer blends when excited by proper illumination. The concentration of the labelling polymer in the matrices was approximately a few tens ppm by weight. Luminescence was visible to the naked eye and survived the simulated recycling successfully. In addition, luminescence emission maxima were correlated with polymer polarity and glass transition temperature, showing a marked blueshift in luminescence emission maxima with the increase in processing temperature and time. This blueshift results from the dispersion of the labelling polymer into the labelled polymer matrix. During processing, the polyacetylene chains disentangled, thereby suppressing their intermolecular interactions. Moreover, shear forces imposed during viscous polymer melt mixing enforced conformational changes, which shortened the average conjugation length of PTMSDPA chain segments. Combined, these two mechanisms shift the luminescence of the probe from a solid- to a more solution-like state. Thus, PTMSDPA can be used as a luminescent probe for dispersion quality, polymer blend homogeneity, and processing history, in addition to the identification, tracing, and recycling of thermoplastics.
机译:在本文中,我们介绍了使用具有高热稳定性和量子产率的双取代聚乙炔作为荧光标记,用于热塑性塑料的识别,示踪,再循环以及最终的防伪应用。开发了一种将聚[1-苯基-2- [对-(三甲基甲硅烷基)苯基]乙炔](PTMSDPA)分散到聚合物共混物中的新方法。为此,选择了四种代表性的商品塑料,即聚丙烯,低密度聚乙烯,聚(甲基丙烯酸甲酯)和聚丙交酯。该材料的两个再加工周期模拟了聚合物的回收利用,当通过适当的照明激发时,该循环可为标记的聚合物共混物提供强烈的发光。基质中标记聚合物的浓度按重量计约为几十ppm。肉眼可见发光,并且在模拟的再循环中成功地存活了下来。此外,发光最大值与聚合物极性和玻璃化转变温度相关,随着处理温度和时间的增加,发光最大值出现明显的蓝移。这种蓝移是由于标记聚合物分散到标记聚合物基质中引起的。在加工过程中,聚乙炔链解开,从而抑制了它们的分子间相互作用。此外,在粘性聚合物熔融混合过程中施加的剪切力迫使构象变化,这缩短了PTMSDPA链段的平均缀合长度。结合使用这两种机制,可以将探针的发光从固态转变为更像溶液的状态。因此,除了可识别,追踪和回收热塑性塑料外,PTMSDPA还可作为用于分散质量,聚合物共混物均匀性和加工历史的发光探针。

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