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◆ Advanced Composites and Hybrid Materials2025-12-01· Materials science

Defect-interface engineering optimizes polymetallic sulfides-based absorbers toward high-efficiency low-/middle-frequency electromagnetic wave absorption

Rui Guo, Shutong Li, RongXia Duan, Yu Sun, Jianhui Li, Yanzhao Wu, Lianjun Wang, Wan Jiang

原始摘要(英文原文)· Original abstract
Overcoming the challenge of decoupling impedance matching from attenuation for low-frequency (2–10 GHz) electromagnetic wave absorption, this work presents a defect-engineered multiphase medium-entropy sulfide composite. Synthesized via integrated mechanical alloying and surfactant-assisted hydrothermal sulfidation, the composite integrates sulfur vacancy-rich (Fe,Co,Ni) 9 S 8 , anisotropic FeCoNi alloy, CoFe₂O₄, and porous MoS 2 . This architecture creates abundant heterogeneous interfaces and interfacial sulfur vacancies, significantly enhancing defect-induced polarization and dielectric loss via the “Janus effect.” Concurrently, the magnetic components boost magnetic loss while optimizing impedance matching. Benefiting from this magneto-dielectric synergy, the composite achieves exceptional absorption: a minimum reflection loss ( RL min ) of -50.4 dB at 3.96 GHz and a remarkable RL min -77.5 dB at 9 GHz. Radar cross-section simulations confirm application potential. This work provides strategic insights for designing innovative low-/mid-frequency absorbers through synergistic dielectric-magnetic loss in polymetallic sulfide heterostructures.
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Defect-interface engineering optimizes polymetallic sulfides-based absorbers toward high-efficiency low-/middle-frequency electromagnetic wave absorption — 科研速览 Science Skim