Integration fabrication of polyimide composite films for aerospace applications

Author:

Zhang Yifan1,Dai Shengqi1,Yin Zeyu1,Yan Weiqing1,Li Qian1,Yuan Heng1,Zhang Xu1,Chen Lin2,Luo Jun2,Ouyang Xiao1,Liao Bin1ORCID,Hao Wei34,Zhu Jia3ORCID

Affiliation:

1. Key Laboratory of Beam Technology of the Ministry of Education, College of Nuclear Science and Technology Beijing Normal University Beijing China

2. Advanced Institute of Natural Sciences Beijing Normal University at Zhuhai Zhuhai China

3. National Center for Nanoscience and Technology Chinese Academy of Sciences Beijing China

4. Department of Physics Southern University of Science and Technology Shenzhen China

Abstract

AbstractPolyimides externally deployed in spacecraft or satellites extensively have various aerospace hazards, including atomic oxygen (AO) erosion, irradiation degradation, and electrostatic charge/discharge (ESC/ESD). To cope with these challenges, we fabricate a ZnO/CuNi‐polyimide composite film with augmented permanence. Using spectroscopy and microscopy techniques, we have shown that the combination of chelation and cross‐linking in the interfacial architecture leads to enhanced interfacial compatibility and mechanical robustness. Besides, due to the positive AO diffusion barrier ability of the wurtzite ZnO, our composite film shows remarkable AO resistance and a very small Ey value of 6.88 × 10−26 cm3/atom, which is merely 2.29% of that of pristine polyimide. Moreover, the well‐defined nanocrystalline state with minimal lattice swelling (0.3%–0.7%) of the Fe+‐irradiated ZnO/CuNi‐polyimide at a damaging dose of 353.4 dpa demonstrates its excellent irradiation resistance. Finally, the ZnO/CuNi‐polyimide also shows sufficient electrostatic dissipation capacity to cope with the ESC/ESD events. Our fabrication approach for composite films based on multi‐technology integration shows potential for aerospace applications and deployment.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Medicine

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