首页> 外文会议>2017 IEEE International Conference on Environment and Electrical Engineering and 2017 IEEE Industrial and Commercial Power Systems Europe >Crosslinking UV-curable polymers with organic dyes for highly stable, multifunctional, light-harvesting luminescent solar concentrators
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Crosslinking UV-curable polymers with organic dyes for highly stable, multifunctional, light-harvesting luminescent solar concentrators

机译:紫外线固化聚合物与有机染料的交联,用于高度稳定,多功能,集光的发光太阳能聚光器

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摘要

A multifunctional luminescent system characterized by outstanding durability is presented in this work as polymeric matrix for luminescent solar concentrators (LSCs). Such coating was fabricated by embedding a modified perylene-based organic dye in a fluorinated matrix consisting in a blend of photo-curable fluorinated polymers. The coating can easily crosslink when exposed to UV-light. The presence of lateral double bonds in the organic dye molecule enables its co-crosslinking with the acrylate fluorinated matrix. Multifunctionality is granted to the coating by remarkably high water contact angle values, slightly exceeding 120°, which impart easy cleaning properties to the LSC device. Accelerated weathering tests (800 h) showed the outstanding stability of LSCs prepared using the fluorinated matrix co-crosslinked with the modified perylene presented here. These devices retained their initial optical efficiency during the intense weathering test. On the contrary, devices fabricated with the same fluorinated polymers, but incorporating a similar dye with the same chemical structure except for the lateral double bonds enabling co-crosslinking with the polymeric matrix, exhibited a 10% efficiency loss over the testing time. The increased stability can be explained by taking into account the effect of the linkage between the organic dye and the host matrix. The fast and easy preparation process presented in this work represents a scalable approach to remarkably stable and truly multifunctional LSCs.
机译:在这项工作中,提出了一种具有出色耐久性的多功能发光系统,它是发光太阳能聚光器(LSC)的聚合物基质。通过将改性的基于per的有机染料嵌入由光固化性氟化聚合物的共混物组成的氟化基质中来制造这种涂层。当暴露于紫外线下时,涂料很容易交联。有机染料分子中存在侧向双键,使其能够与丙烯酸酯氟化基体共交联。显着高的水接触角值(略超过120°)可赋予涂层多功能性,从而使LSC设备易于清洁。加速风化试验(800小时)显示,使用氟化基质与本文介绍的改性per进行共交联制备的LSC具有出色的稳定性。这些设备在强烈的耐候性测试中保持了最初的光学效率。相反,用相同的氟化聚合物制造的器件,但结合了具有相同化学结构的相似染料,除了能够与聚合物基体共交联的横向双键外,在整个测试时间内损失了10%的效率。增加的稳定性可以通过考虑有机染料和主体基质之间的键合作用来解释。这项工作中介绍的快速简便的准备过程代表了一种非常稳定且真正多功能的LSC的可扩展方法。

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