TY - JOUR
T1 - Multilayered heterostructures and multicomponent synergy in MnO@HsGDY@NC/Ni magnetic nanofibers for enhanced electromagnetic wave absorption
AU - Zeng, Boli
AU - Zhang, Fangrong
AU - Zhao, Kehan
AU - Ahmad, Mudasir
AU - Wu, Jianfeng
AU - Zhang, Lei
AU - Lan, Di
AU - Zhang, Baoliang
N1 - Publisher Copyright:
© 2025
PY - 2026/4/20
Y1 - 2026/4/20
N2 - Hydrogen-substituted graphdiyne (HsGDY) is a novel dielectric loss-dominant microwave-absorbing material. It plays a critical role in advancing electromagnetic wave (EMW) attenuation through synergistic component interactions and rational structural design. In this study, we propose a strategy to enhance heterogeneous interfaces and magnetic loss by utilizing MnO2 nanowires as one-dimensional rigid templates, polydopamine (PDA) as interfacial modifiers, and Ni-based metal-organic frameworks (Ni3(btc)2) as magnetic hybrid precursors. These components were integrated to construct hierarchical MnO2@HsGDY@PDA@Ni3(btc)2 composite fibers. The fibers were subsequently subjected to vacuum carbonization to yield MnO@HsGDY@NC/Ni magnetic nanofibers with both dielectric and magnetic loss capabilities. Systematic investigations on the effect of Ni3(btc)2 loading revealed that indirect modulation of Ni nanoparticle content enables precise control over the electromagnetic parameters of the nanofibers. Increasing Ni nanoparticle content significantly improved the material's EMW dissipation capacity. The synthesized MnO@HsGDY@NC/Ni-4 exhibits superior EMW absorption performance, achieving a minimum reflection loss (RLmin) of −48.47 dB@2.5 mm with 35 % filler loading and an effective absorption bandwidth (EAB) of 4.9 GHz (12.9–17.8 GHz). Research on the absorption mechanism reveals that the introduction of multiple heterogeneous interfaces significantly enhances interfacial polarization and multi-scattering effects, while component synergy optimizes impedance matching. Furthermore, magnetic Ni nanoparticles introduce additional loss mechanisms, including natural resonance and eddy current effects, collectively enhancing the EMW absorption performance of MnO@HsGDY@NC/Ni magnetic nanofibers.
AB - Hydrogen-substituted graphdiyne (HsGDY) is a novel dielectric loss-dominant microwave-absorbing material. It plays a critical role in advancing electromagnetic wave (EMW) attenuation through synergistic component interactions and rational structural design. In this study, we propose a strategy to enhance heterogeneous interfaces and magnetic loss by utilizing MnO2 nanowires as one-dimensional rigid templates, polydopamine (PDA) as interfacial modifiers, and Ni-based metal-organic frameworks (Ni3(btc)2) as magnetic hybrid precursors. These components were integrated to construct hierarchical MnO2@HsGDY@PDA@Ni3(btc)2 composite fibers. The fibers were subsequently subjected to vacuum carbonization to yield MnO@HsGDY@NC/Ni magnetic nanofibers with both dielectric and magnetic loss capabilities. Systematic investigations on the effect of Ni3(btc)2 loading revealed that indirect modulation of Ni nanoparticle content enables precise control over the electromagnetic parameters of the nanofibers. Increasing Ni nanoparticle content significantly improved the material's EMW dissipation capacity. The synthesized MnO@HsGDY@NC/Ni-4 exhibits superior EMW absorption performance, achieving a minimum reflection loss (RLmin) of −48.47 dB@2.5 mm with 35 % filler loading and an effective absorption bandwidth (EAB) of 4.9 GHz (12.9–17.8 GHz). Research on the absorption mechanism reveals that the introduction of multiple heterogeneous interfaces significantly enhances interfacial polarization and multi-scattering effects, while component synergy optimizes impedance matching. Furthermore, magnetic Ni nanoparticles introduce additional loss mechanisms, including natural resonance and eddy current effects, collectively enhancing the EMW absorption performance of MnO@HsGDY@NC/Ni magnetic nanofibers.
KW - Core-shell structures
KW - Electromagnetic wave absorption
KW - Hydrogen-substituted graphdiyne
KW - Magnetic nanofibers
UR - https://www.scopus.com/pages/publications/105013379189
U2 - 10.1016/j.jmst.2025.07.008
DO - 10.1016/j.jmst.2025.07.008
M3 - 文章
AN - SCOPUS:105013379189
SN - 1005-0302
VL - 251
SP - 193
EP - 202
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -