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首页> 外文期刊>ACS applied materials & interfaces >Development of Flexible LEO-Resistant PI Films for Space Applications Using a Self-Healing Mechanism by Surface-Directed Phase Separation of Block Copolymers
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Development of Flexible LEO-Resistant PI Films for Space Applications Using a Self-Healing Mechanism by Surface-Directed Phase Separation of Block Copolymers

机译:通过嵌段共聚物的表面定向相分离的自愈机制开发用于空间应用的耐LEO柔性PI膜

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Polimide-block-polydimethylsiloxane (PI-b-PDMS) block copolymers have been synthesized from commercially available amino-terminated.polysiloxanes with different molecular weights, for use as polymeric materials resistant to the low earth orbit (LEO) space environment. A structural optimization with respect to maximum environmental protection has been performed by varying the PDMS block length as well as the architecture of the block copolymers spanning, from muitiblock to triblock and star-shaped morphologies. The synthesized polymers and casted films show good mechanical and thermal performance. For block copolymers with a load of 2 % PDMS (in the case of the muitiblock copolymers), a complete surface coverage of the PDMS has been found. It has been shown that the transfer of the surface enriched PDMS layer into a thin silica layer after atomic oxygen (AO) exposure results in a drastic decrease in AO erosion rate. The silica layer protects the underlying material from oxygen initiated erosion resulting in a drastic decrease of surface roughness. This phenomena is observable for loads as small as 6 wt % PDMS.
机译:聚酰亚胺-嵌段-聚二甲基硅氧烷(PI-b-PDMS)嵌段共聚物是由市售的具有不同分子量的氨基封端的聚硅氧烷合成的,用作耐低地球轨道(LEO)空间环境的聚合物材料。通过改变PDMS嵌段长度以及嵌段共聚物的结构,从多嵌段到三嵌段和星形形态,进行了针对最大环境保护的结构优化。合成的聚合物和流延膜表现出良好的机械和热性能。对于负载为2%PDMS的嵌段共聚物(在多嵌段共聚物的情况下),已经发现PDMS的表面覆盖率很高。已经表明,在暴露了原子氧(AO)之后,表面富集的PDMS层转移到二氧化硅薄层中,导致AO腐蚀速率急剧降低。二氧化硅层保护下面的材料免受氧引发的侵蚀,从而导致表面粗糙度的急剧降低。对于低至6 wt%PDMS的负载,这种现象是可以观察到的。

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