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首页> 外文期刊>High performance polymers >Ultra-Low CTE and Improved Toughness of PMDA/PDA Polyimide-based Molecular Composites Containing Asymmetric BPDA-type Polyimides
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Ultra-Low CTE and Improved Toughness of PMDA/PDA Polyimide-based Molecular Composites Containing Asymmetric BPDA-type Polyimides

机译:含不对称BPDA型聚酰亚胺的PMDA / PDA聚酰亚胺基分子复合材料的超低CTE和改善的韧性

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摘要

A completely amorphous polyimide (PI) derived from 2,3,3',4'-biphenyltetracarboxylic dianhy-dride (a-BPDA) with 4,4'-oxydianiline (4,4'-ODA) (i.e. a-BPDA/ODA) was used as a matrix polymer for a rod-like polyimide structure derived from pyromellitic dianhydride (PMDA) with p-phenylenediamine (PDA) (i.e. PMDA/PDA) to improve the toughness without sacrificing its ultra-low coefficient of thermal expansion (CTE) characteristics. A matrix effect of a-BPDA/ODA was investigated by comparing with an isomer PI system, s-BPDA/ODA (s-BPDA: 3,3',4,4'-biphenyltetracarboxylic dianhydride). Neither of the PMDA/PDA-based blend systems with a minor fraction of these flexible PIs showed any distinct glass transitions during dynamic mechanical thermal analysis. The unique fluorescence behavior of perylenete-tracarboxydiimide (PEDI), which became almost non-fluorescent by intimate intermolecular contact with the PMDA/PDA chains, was applied to study the miscibility of the PMDA/PDA-based blend systems. For this purpose, a- and s-BPDA/ODA was labeled by copolymerization using a trace amount of difunc-tional PEDI. The results revealed that the a-BPDA/ODA-containing blend system was miscible over the entire blend composition whereas the s-BPDA/ODA-containing counterpart was essentially immiscible. The a-BPDA/ODA was much more effective as a flexible component than s-BPDA/ODA for reducing the crystallinity of PMDA/PDA and, as a result, significantly improved the film toughness. Blending of only small amounts of a-BPDA/ODA (5-10 wt.%) into PMDA/PDA caused an unexpected further decrease in the ultra-low CTE (2.8 ppm/K) of homo PMDA/PDA film. A mechanism is proposed to reasonably explain the results obtained in the present study. The blend system composed of PMDA/PDA (90 wt/%) and a-BPDA/ODA (10 wt.%) achieved an ultra-low CTE of 0.9 ppm K~(-1) in addition to sufficient film flexibility.
机译:由2,3,3',4'-联苯四甲酸二酐(a-BPDA)与4,4'-氧二苯胺(4,4'-ODA)(即a-BPDA / ODA)衍生而来的完全无定形的聚酰亚胺(PI) )用作棒状聚酰亚胺结构的基质聚合物,该结构由均苯四酸二酐(PMDA)和对苯二胺(PDA)(即PMDA / PDA)衍生而来,从而在不牺牲其超低热膨胀系数(CTE)的情况下提高了韧性)特征。通过与异构体PI系统s-BPDA / ODA(s-BPDA:3,3',4,4'-联苯四甲酸二酐)进行比较,研究了a-BPDA / ODA的基质效应。在柔性机械热分析过程中,具有这些柔性PI的一小部分的基于PMDA / PDA的共混系统均未显示任何明显的玻璃化转变。通过与PMDA / PDA链之间密切的分子间接触,几乎变成无荧光的per四碳二亚胺(PEDI)的独特荧光行为被用于研究基于PMDA / PDA的共混体系的混溶性。为此,使用痕量的功能性PEDI通过共聚标记a-和s-BPDA / ODA。结果表明,含a-BPDA / ODA的共混体系在整个共混物组合物中是可混溶的,而含s-BPDA / ODA的对应物基本上是不混溶的。与s-BPDA / ODA相比,a-BPDA / ODA作为柔性组分在降低PMDA / PDA的结晶度方面更为有效,因此,显着提高了膜的韧性。仅将少量的a-BPDA / ODA(5-10 wt。%)掺入PMDA / PDA中会导致均质PMDA / PDA膜的超低CTE(2.8 ppm / K)意外降低。提出了一种机制来合理解释本研究中获得的结果。由PMDA / PDA(90 wt /%)和a-BPDA / ODA(10 wt。%)组成的共混体系除具有足够的薄膜柔韧性外,还具有0.9 ppm K〜(-1)的超低CTE。

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