DOI: 10.1021/acssuschemeng.6c04801 ISSN: 2168-0485

Fe-Doped ZIF-67 Derived Carbon@polypyrrole Composites for Enhanced Electromagnetic Wave Absorption

Lianfen Chen, Jingfeng Liang, Yantong Lin, Junyuan Liang, Yanni Wu

Abstract

The proliferation of electronic devices and wireless communication systems has intensified electromagnetic interference, creating a strong demand for high-performance electromagnetic wave (EMW) absorbers for electromagnetic compatibility and stealth-related applications. However, many existing synthesis routes rely on corrosive reagents, harsh conditions, or high energy input. Here, we report a relatively mild route to Fe-doped ZIF-67-derived carbon@polypyrrole (PPy) composites that combines potassium ferric oxalate-mediated etching, carbonization, and aqueous-phase polymerization. This etching step simultaneously introduces Fe species and generates defect-rich architectures and heterogeneous interfaces while largely retaining the porous framework, thereby enabling effective dielectric regulation. The heated–etched hf-CoFe/C@PPy composite delivers a minimum reflection loss of –65.77 dB and an effective absorption bandwidth of 6.06 GHz. Moreover, the room-temperature-etched hp-CoFe/C@PPy achieves a broad effective absorption bandwidth of 6.48 GHz at a thickness of 2.29 mm. Mechanistic analysis indicates that the superior performance arises from the synergistic effects of impedance matching, conductive loss, interfacial/dipolar polarization, multiple scattering, and quarter-wavelength cancellation. These results provide a viable route for designing high-performance EMW absorbers through a comparatively mild and environmentally more compatible process.

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