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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Photosensitive polyimide/silica hybrid optical materials: Synthesis, properties, and patterning
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Photosensitive polyimide/silica hybrid optical materials: Synthesis, properties, and patterning

机译:光敏聚酰亚胺/二氧化硅混合光学材料:合成,性质和图案

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In conventional ionic salt photosensitive polyimides, large volume shrinkage during imidization would be occurred due to eliminating pendant photosensitive moieties, such as 2-methyl acrylic acid 2-dimethylamino-ethyl ester (MDAE). In this study, the volume shrinkage of photosensitive poly(4,4'-(hexafluoroisopropylidenediphthalic anhydride)-co-oxydianiline) (6FDA-ODA)/MDAE was largely reduced by photocrosslinking MDAE with a coupling agent and the silica domain in the hybrid materials. The used coupling agents were 3-niethacryloxypropyl trimethoxysilane (MPTMS) or (4-vinylphenethyl)trimethoxysilane (VPTMS). The coupling agent and the silica domain are designed primarily for reducing the volume shrinkage and enhancing the thermal properties, respectively. The retention of MDAE in the prepared hybrid films is supported by X-ray photoelectron spectroscopy (XPS) and thickness variation during curing process. The silica domain in the hybrid materials from TEM analysis was in the range of 10-50 nm, which was formed by the coupling agent and tetramethoxysilane. The silica domain significantly enhanced the thermal properties of the prepared hybrid films in comparison with parent fluorinated polyimide, including the glass transition temperature and coefficient of thermal expansion. The prepared hybrid materials also exhibited reduced refractive index and optical loss by increasing the silica. The SEM diagram suggested the prepared photosensitive hybrid materials could obtain lithographical patterns with a good resolution. These results indicate that the newly prepared photosensitive polyimide/silica hybrid materials may have potential applications for optical devices. (c) 2005 Elsevier Ltd. All rights reserved.
机译:在常规的离子盐光敏聚酰亚胺中,由于消除了侧基光敏基团,例如2-甲基丙烯酸2-二甲基氨基-乙基酯(MDAE),因此在酰亚胺化过程中会发生大体积收缩。在这项研究中,通过将MDAE与偶联剂和杂化材料中的二氧化硅结构域进行光交联,大大降低了感光性聚(4,4'-(六氟异丙基二烯二酸酐)-co-oxydianiline)(6FDA-ODA)/ MDAE的体积收缩。所用的偶联剂是3-乳基丙烯酰氧基丙基三甲氧基硅烷(MPTMS)或(4-乙烯基苯乙基)三甲氧基硅烷(VPTMS)。偶联剂和二氧化硅区域的设计主要是分别用于减小体积收缩和增强热性能。 X射线光电子能谱(XPS)和固化过程中的厚度变化可支持MDAE在制备的杂化膜中的保留。来自TEM分析的杂化材料中的二氧化硅域在10-50nm的范围内,其由偶联剂和四甲氧基硅烷形成。与母体氟化聚酰亚胺相比,二氧化硅域显着提高了制备的杂化膜的热性能,包括玻璃化转变温度和热膨胀系数。所制备的杂化材料还通过增加二氧化硅而表现出降低的折射率和光学损失。 SEM图表明,所制备的光敏杂化材料可以获得良好的分辨率的光刻图案。这些结果表明,新制备的光敏聚酰亚胺/二氧化硅杂化材料可能在光学器件中具有潜在的应用。 (c)2005 Elsevier Ltd.保留所有权利。

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