Cao Xinhui, Wu Xinyi, Wang Xue, Luo Jiamei, Zhang Zhe, Xue Yi, Zhang Guoliang, Zhang Liying, Zhang Hui, Yu Jianyong
Shanghai Collaborative Innovation Center of High-Performance Fibers and Composites (Province-Ministry Joint), Center for Civil Aviation Composites, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, P. R. China.
Center for Computational Chemistry, College of Chemistry and Chemical Engineering, Wuhan Textile University, Wuhan, 430200, P. R. China.
Adv Sci (Weinh). 2025 Jul;12(26):e2502560. doi: 10.1002/advs.202502560. Epub 2025 Apr 7.
Metal-organic framework (MOF)-derived architectures are regarded as an effective electromagnetic wave (EMW)-absorbing materials owing to their adjustable compositions and microstructures. The combination of MOFs with carbon nanofibers (CNFs) is a practical method to increase the EMW absorption ability. In this work, cobalt-based zeolitic imidazolate framework-67 (ZIF-67) serves as a self-sacrificing precursor to fabricate Co-carbon nanofiber (Co-CNF) composites via an in situ electrospinning strategy. Comparative studies on ex situ and in situ, electrospinning strategies for EMW absorption are conducted. A unique structural evolution mechanism from ZIF-67 to Co nanoparticles is explored. Numerous small Co nanoparticles are evenly distributed on the surface of in situ synthesized Co-CNF (in-Co-CNF) resulting from the collapse of the ZIF-67 framework, whereas the ZIF-67 framework remains on the surface of ex situ synthesized Co-CNF (ex-Co-CNF), encapsulating large Co nanoparticles. A lower reflection loss (RL) of -48.6 dB at 6.8 GHz with 3.5 mm is achieved for the in-Co-CNF because of the improved conduction, polarization, and magnetic losses, whereas the ex-Co-CNF only exhibits an RL of -18.3 dB at 9.3 GHz with the same thickness. A radar cross-section (RCS) simulation and a Tesla wireless transmission experiment are conducted to validate the EMW absorption of Co-CNF composites in real applications.
金属有机框架(MOF)衍生结构因其可调节的组成和微观结构而被视为一种有效的电磁波(EMW)吸收材料。将MOF与碳纳米纤维(CNF)结合是提高EMW吸收能力的一种实用方法。在这项工作中,钴基金属有机框架ZIF-67用作牺牲前驱体,通过原位静电纺丝策略制备钴-碳纳米纤维(Co-CNF)复合材料。对用于EMW吸收的异位和原位静电纺丝策略进行了对比研究。探索了从ZIF-67到钴纳米颗粒的独特结构演变机制。由于ZIF-67框架的坍塌,大量小钴纳米颗粒均匀分布在原位合成的Co-CNF(in-Co-CNF)表面,而ZIF-67框架保留在异位合成的Co-CNF(ex-Co-CNF)表面,包裹着大的钴纳米颗粒。由于传导、极化和磁损耗的改善,in-Co-CNF在6.8 GHz、厚度为3.5 mm时实现了-48.6 dB的较低反射损耗(RL),而异位Co-CNF在相同厚度下仅在9.3 GHz时表现出-18.3 dB的RL。进行了雷达散射截面(RCS)模拟和特斯拉无线传输实验,以验证Co-CNF复合材料在实际应用中的EMW吸收性能。