Zhan Hang, Shi Qiang Qiang, Wu Guang, Wang Jian Nong
School of Mechanical and Power Engineering, East China University of Science and Technology 130 Meilong Road Shanghai 200237 China
RSC Adv. 2020 Jun 8;10(37):21772-21780. doi: 10.1039/d0ra03472j.
For applications in energy-saving buildings, aerospace industry, and wearable electronic devices, thermally insulating materials (TIMs) are required to possess not only low thermal conductivity but also light weight, mechanical robustness, and environmental stability. However, conventional TIMs can rarely meet these requirements. To overcome this shortcoming, we propose a new strategy for preparing TIMs. This is based on the design of a highly porous structure from carbon nanotubes (CNTs). The CNT structure is constructed by continuous winding of a hollow cylindrical CNT assembly from a high-temperature furnace and subsequent modification by the deposition of amorphous carbon (AC). The resultant sponge-like material is shown to have a record-low density of 2-4 mg cm and a record-low thermal conductivity of 10-14 mW m K. Combined with this thermal property, the sponge material also possesses fire-retardancy during burning, mechanical robustness after repeated loading and unloading to a high strain of 90%, and environmental stability from 535 to -196 °C. Such a combination of physical and mechanical properties results from the strengthening of the porous structure by virtue of AC deposition on CNT surfaces and junctions. The high performance of the new TIM constitutes the foundation for it to be used in wide areas, especially under the harsh conditions requiring multifunctionality.
对于在节能建筑、航空航天工业和可穿戴电子设备中的应用,隔热材料(TIMs)不仅需要具有低导热率,还需要具备轻质、机械坚固性和环境稳定性。然而,传统的隔热材料很少能满足这些要求。为了克服这一缺点,我们提出了一种制备隔热材料的新策略。这是基于由碳纳米管(CNTs)设计出的高度多孔结构。碳纳米管结构是通过将中空圆柱形碳纳米管组件从高温炉中连续缠绕并随后通过沉积无定形碳(AC)进行改性而构建的。所得的海绵状材料显示出创纪录的低密度,为2 - 4毫克/立方厘米,以及创纪录的低导热率,为10 - 14毫瓦/米·开尔文。结合这种热性能,该海绵材料在燃烧时还具有阻燃性,在反复加载和卸载至90%的高应变后具有机械坚固性,并且在535至 - 196°C的温度范围内具有环境稳定性。这种物理和机械性能的组合源于通过在碳纳米管表面和连接处沉积无定形碳来强化多孔结构。这种新型隔热材料的高性能构成了其在广泛领域中应用的基础,特别是在需要多功能性的苛刻条件下。