Delkowski Michal, Smith Christopher T G, Anguita José V, Silva S Ravi P
Advanced Technology Institute, Department of Electrical and Electronic Engineering, University of Surrey, Guildford, Surrey GU2 7XH, UK.
Airbus Defence and Space GmbH, Claude-Dornier-Strasse, 88090 Immenstaad, Germany.
iScience. 2021 Jun 5;24(6):102692. doi: 10.1016/j.isci.2021.102692. eCollection 2021 Jun 25.
The endeavors to develop manufacturing methods that can enhance polymer and composite structures in spacecraft have led to much research and innovation over many decades. However, the thermal stability, intrinsic material stress, and anisotropic substrate properties pose significant challenges and inhibit the use of previously proposed solutions under extreme space environment. Here, we overcome these issues by developing a custom-designed, plasma-enhanced cross-linked poly(p-xylylene):diamond-like carbon superlattice material that enables enhanced mechanical coupling with the soft polymeric and composite materials, which in turn can be applied to large 3D engineering structures. The superlattice structure developed forms an integral part with the substrate and results in a space qualifiable carbon-fiber-reinforced polymer featuring 10-20 times greater resistance to cracking without affecting the stiffness of dimensionally stable structures. This innovation paves the way for the next generation of advanced ultra-stable composites for upcoming optical and radar instrument space programs and advanced engineering applications.
数十年来,为开发能够增强航天器中聚合物和复合材料结构的制造方法所做的努力引发了大量研究与创新。然而,热稳定性、材料固有应力以及各向异性的基体特性带来了重大挑战,限制了先前提出的解决方案在极端太空环境下的应用。在此,我们通过开发一种定制设计的、等离子体增强交联的聚对二甲苯:类金刚石碳超晶格材料克服了这些问题,该材料能够增强与柔软聚合物和复合材料的机械耦合,进而可应用于大型三维工程结构。所开发的超晶格结构与基体形成一个整体部分,产生一种可用于太空的碳纤维增强聚合物,其抗裂性提高了10至20倍,且不影响尺寸稳定结构的刚度。这一创新为即将开展的光学和雷达仪器太空计划及先进工程应用中的下一代先进超稳定复合材料铺平了道路。