Atar Nurit, Grossman Eitan, Gouzman Irina, Bolker Asaf, Murray Vanessa J, Marshall Brooks C, Qian Min, Minton Timothy K, Hanein Yael
†Space Environment Department, Soreq NRC, Yavne 81800, Israel.
§Department of Chemistry and Biochemistry, Montana State University, Bozeman, Montana 59717, United States.
ACS Appl Mater Interfaces. 2015 Jun 10;7(22):12047-56. doi: 10.1021/acsami.5b02200. Epub 2015 May 21.
In low Earth orbit (LEO), hazards such as atomic oxygen (AO) or electrostatic discharge (ESD) degrade polymeric materials, specifically, the extensively used polyimide (PI) Kapton. We prepared PI-based nanocomposite films that show both AO durability and ESD protection by incorporating polyhedral oligomeric silsesquioxane (POSS) and carbon nanotube (CNT) additives. The unique methods that are reported prevent CNT agglomeration and degradation of the CNT properties that are common in dispersion-based processes. The influence of the POSS content on the electrical, mechanical, and thermo-optical properties of the CNT-POSS-PI films was investigated and compared to those of control PI and CNT-PI films. CNT-POSS-PI films with 5 and 15 wt % POSS content exhibited sheet resistivities as low as 200 Ω/□, and these resistivities remained essentially unchanged after exposure to AO with a fluence of ∼2.3 × 10(20) O atoms cm(-2). CNT-POSS-PI films with 15 wt % POSS content exhibited an erosion yield of 4.8 × 10(-25) cm(3) O atom(-1) under 2.3 × 10(20) O atoms cm(-2) AO fluence, roughly one order of magnitude lower than that of pure PI films. The durability of the conductivity of the composite films was demonstrated by rolling film samples with a tight radius up to 300 times. The stability of the films to thermal cycling and ionizing radiation was also demonstrated. These properties make the prepared CNT-POSS-PI films with 15 wt % POSS content excellent candidates for applications where AO durability and electrical conductivity are required for flexible and thermally stable materials. Hence, they are suggested here for LEO applications such as the outer layers of spacecraft thermal blankets.
在近地轨道(LEO)中,诸如原子氧(AO)或静电放电(ESD)等危害会使聚合物材料降解,特别是广泛使用的聚酰亚胺(PI)Kapton。我们通过掺入多面体低聚倍半硅氧烷(POSS)和碳纳米管(CNT)添加剂制备了具有AO耐久性和ESD防护性能的PI基纳米复合薄膜。所报道的独特方法可防止CNT团聚以及在基于分散的工艺中常见的CNT性能退化。研究了POSS含量对CNT-POSS-PI薄膜的电学、力学和热光学性能的影响,并与对照PI薄膜和CNT-PI薄膜进行了比较。POSS含量为5 wt%和15 wt%的CNT-POSS-PI薄膜的薄层电阻低至200 Ω/□,并且在暴露于通量约为2.3×10²⁰ O原子/cm²的AO后,这些电阻基本保持不变。在2.3×10²⁰ O原子/cm²的AO通量下,POSS含量为15 wt%的CNT-POSS-PI薄膜的侵蚀产率为4.8×10⁻²⁵ cm³/O原子,比纯PI薄膜低约一个数量级。通过将薄膜样品以紧密半径卷绕多达300次,证明了复合薄膜电导率的耐久性。还证明了薄膜对热循环和电离辐射的稳定性。这些特性使得所制备的POSS含量为15 wt%的CNT-POSS-PI薄膜成为柔性和热稳定材料在需要AO耐久性和导电性的应用中的极佳候选材料。因此,在此建议将它们用于LEO应用,例如航天器热毯的外层。