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Advanced Aromatic Polymers with Excellent Antiatomic Oxygen Performance Derived from Molecular Precursor Strategy and Copolymerization of Polyhedral Oligomeric Silsesquioxane

机译:具有优异抗原子氧性能的先进芳香族聚合物,得益于分子前体策略和多面体低聚倍半硅氧烷的共聚合

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In this contribution, the advanced aromatic polymers with excellent antiatomic oxygen (AO) performance were designed and synthesized using molecular precursor strategy and copolymerization of polyhedral oligomeric silsesquioxane (FOSS). A soluble poly(p-phenylene benzobisoxazole) (PBO) precursor, that is, TBS-PBO (tert-butyldimethylsilyl was denoted as TBS), was designed to overcome the poor solubility of PBO in organic solvents. Then the new copolymer of TBS-PBO-POSS was synthesized by the copolymerization of TBS PBO and FOSS, which possessed good solubility and film-forming ability in common organic solvents, such as N-methylpyrrolidone, N,N-dimethylacetamide, and dimethyl sulfoxide. More importantly, the TBS-PBO-OSS films exhibited outstanding antiatomic oxygen properties because of the incorporation of FOSS monomers with cagelike structure into the main chain of copolymer, which drastically reduced the AO-induced erosion owing to the formation of the passivating silica layer on the surface of polymers. When the TBS-PBO-POSS films were exposed to AO effective fluences of 1.5495 X 10(20) atom cm(-2) (5 h) and 4.6486 X 10(20) atom cm(-2) (15 h), the relative mass loss was merely 0.19% and 0.41%, respectively. This work provides a new perspective and efficient strategy for the molecular design of aromatic heterocyclic polymers possessing excellent combination properties including processing convenience and antioxidative and mechanical properties, which can be employed as potential candidates to endure the aggressive environment encountered in low earth orbits.
机译:在此贡献中,使用分子前体策略和多面体低聚倍半硅氧烷(FOSS)的共聚设计和合成了具有出色的抗原子氧(AO)性能的先进芳族聚合物。设计可溶的聚对苯撑苯并二恶唑(PBO)前体,即TBS-PBO(叔丁基二甲基甲硅烷基表示为TBS),以克服PBO在有机溶剂中的不良溶解性。然后通过TBS PBO与FOSS的共聚反应合成出新的TBS-PBO-POSS共聚物,在N-甲基吡咯烷酮,N,N-二甲基乙酰胺,二甲基亚砜等常见有机溶剂中具有良好的溶解性和成膜能力。 。更重要的是,由于将具有笼状结构的FOSS单体掺入到共聚物的主链中,TBS-PBO-OSS膜表现出出色的抗原子氧性能,这大大降低了AO引起的腐蚀,这是由于在其上形成了钝化二氧化硅层聚合物表面。当TBS-PBO-POSS薄膜暴露于AO有效通量为1.5495 X 10(20)原子cm(-2)(5 h)和4.6486 X 10(20)原子cm(-2)(15 h)时,相对质量损失分别仅为0.19%和0.41%。这项工作为芳香族杂环聚合物的分子设计提供了新的视角和有效策略,这些芳香族杂环聚合物具有出色的结合性能,包括加工便利性以及抗氧化和机械性能,可以用作承受低地球轨道遇到的侵蚀性环境的潜在候选物。

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