Ziyu Liu, Zhaofan He, Huimin Liu, Qian Wang, Jin Liang, Zhen Yu, Ruizhe Xing, Jie Kong
Electromagnetic wave (EMW) absorbers with broadband attenuation and long-term stability are important for applications in marine environments. Dielectric ceramics excel in thermal and chemical resistance but offer limited impedance matching, whereas magnetic materials provide strong absorption yet degrade rapidly due to corrosion. Herein, we present an engineering approach for polymer-derived ceramics that utilizes ferric crosslinking to integrate both magnetic functionality and hierarchical structure within a single system. By reacting iron (III) acetylacetonate with Si-H groups in polyborosilazane, the uniformly distributed ferric polymer network is formed. Subsequent pyrolysis drives carbon nanotube growth and FexSiy phase formation, yielding a distinctive hierarchical “mushroom-like” structure composed of SiBCN matrices, carbon nanotube stems, and carbon-encapsulated FexSiy caps. This structure promotes EMW absorption via magneto-dielectric synergy, rich interfaces, and multiple scattering, while carbon-encapsulated FexSiy in the SiBCN matrix provides corrosion resistance. The effective absorption bandwidth (EAB, defined as reflection loss less than -10 dB) of h-SiBCNFe reaches up to 8.16 GHz, while also exhibits a corrosion potential (Ecorr) of 0.033 V and an ultralow corrosion current (Icorr) of 0.63 μA·cm-2. These features highlight a new design strategy for developing advanced EMW absorbers tailored for marine applications.