Bai Ruicheng, Zhang Pei, Wang Xihai, Zhang Hengxin, Wang Hao, Shao Qinsi
Research Center for Composite Materials, School of Materials Science and Engineering, Shanghai University, Shanghai 200072, China.
Institute for Sustainable Energy, School of Sciences, Shanghai University, Shanghai 200444, China.
Nanomaterials (Basel). 2024 Jan 2;14(1):115. doi: 10.3390/nano14010115.
In this work, bilayer nanocoatings were designed and constructed on high-performance aromatic polysulfonamide (PSA) fibers for robust electric conduction and electromagnetic interference (EMI) shielding. More specifically, PSA fibers were first endowed with necessary electric conductivity via electroless nickel (Ni) or nickel alloy (Ni-P-B) plating. Afterward, silver electroplating was carried out to further improve the performance of the composite. The morphology, microstructure, environmental stability, mechanical properties, and EMI shielding performance of the proposed cladded fibers were thoroughly investigated to examine the effects of electrodeposition on both amorphous Ni-P-B and crystalline Ni substrates. The acquired results demonstrated that both PSA@Ni@Ag and PSA@Ni-P-B@Ag composite fibers had high environment stability, good tensile strength, low electric resistance, and outstanding EMI shielding efficiency. This indicates that they can have wide application prospects in aviation, aerospace, telecommunications, and military industries. Furthermore, the PSA@Ni-P-B@Ag fiber configuration seemed more reasonable because it exhibited smoother and denser silver surfaces as well as stronger interfacial binding, leading to lower resistance (185 mΩ cm) and better shielding efficiency (82.48 dB in the X-band).
在这项工作中,在高性能芳族聚磺酰胺(PSA)纤维上设计并构建了双层纳米涂层,以实现稳健的导电和电磁干扰(EMI)屏蔽。更具体地说,首先通过化学镀镍(Ni)或镍合金(Ni-P-B)赋予PSA纤维必要的导电性。随后,进行电镀银以进一步提高复合材料的性能。对所提出的包覆纤维的形态、微观结构、环境稳定性、机械性能和EMI屏蔽性能进行了深入研究,以考察电沉积对非晶态Ni-P-B和结晶态Ni基底的影响。所得结果表明,PSA@Ni@Ag和PSA@Ni-P-B@Ag复合纤维均具有高环境稳定性、良好的拉伸强度、低电阻和出色的EMI屏蔽效率。这表明它们在航空、航天、电信和军事工业中具有广阔的应用前景。此外,PSA@Ni-P-B@Ag纤维结构似乎更合理,因为它呈现出更光滑、更致密的银表面以及更强的界面结合力,导致更低的电阻(185 mΩ·cm)和更好的屏蔽效率(在X波段为82.48 dB)。