TY - JOUR
T1 - Cross-scale structural engineering of MOF-derived Cox Niy @C nanorods with controllable electromagnetic response behavior for broadband electromagnetic wave absorption
AU - Huang, Bo
AU - Ye, Fang
AU - Deng, Jingwen
AU - Wang, Jingchao
AU - Li, Chen
AU - Cao, Yuchen
AU - Zhang, Wenjing
AU - Fan, Xiaomeng
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/2
Y1 - 2026/2
N2 - Metal‒organic framework (MOF) derivatives employed as electromagnetic wave (EMW) absorption materials have gained considerable attention because of their plentiful coordination components and diverse nanomicrostructures. However, achieving broadband EMW absorption solely through nanoscale structural design remains challenging. Herein, a cross-scale structural engineering strategy is proposed to address this limitation. At the nanomicroscale, MOF-derived Cox Niy @C nanorods were fabricated via a solvothermal and pyrolysis process. Systematic manipulation of the built-in electric field (BIEF) heterointerface achieved through adjusting the Co/Ni atomic ratio significantly promotes electron-directed migration, alters the spatial charge distribution, and ultimately enhances the polarization relaxation and magnetic resonance effects, resulting in superior EMW absorption performance (the effective absorption bandwidth of Co2Ni@C is 4.9 GHz at 1.75 mm). The geometric configuration of the electromagnetic metastructures was subsequently optimized via CST software. Through cross-scale structural design, the simulated gradient honeycomb structure metamaterial composed of Co2Ni@C achieves multiband compatibility, and the EAB reaches 38 GHz (covering 2–40 GHz) with a total thickness of 15 mm. This research elucidates the BIEF loss mechanism of MOF-derived Cox Niy @C composites by rationally controlling the Co/Ni atomic ratio and provides novel insights into the structural design of electromagnetic nanomaterials.
AB - Metal‒organic framework (MOF) derivatives employed as electromagnetic wave (EMW) absorption materials have gained considerable attention because of their plentiful coordination components and diverse nanomicrostructures. However, achieving broadband EMW absorption solely through nanoscale structural design remains challenging. Herein, a cross-scale structural engineering strategy is proposed to address this limitation. At the nanomicroscale, MOF-derived Cox Niy @C nanorods were fabricated via a solvothermal and pyrolysis process. Systematic manipulation of the built-in electric field (BIEF) heterointerface achieved through adjusting the Co/Ni atomic ratio significantly promotes electron-directed migration, alters the spatial charge distribution, and ultimately enhances the polarization relaxation and magnetic resonance effects, resulting in superior EMW absorption performance (the effective absorption bandwidth of Co2Ni@C is 4.9 GHz at 1.75 mm). The geometric configuration of the electromagnetic metastructures was subsequently optimized via CST software. Through cross-scale structural design, the simulated gradient honeycomb structure metamaterial composed of Co2Ni@C achieves multiband compatibility, and the EAB reaches 38 GHz (covering 2–40 GHz) with a total thickness of 15 mm. This research elucidates the BIEF loss mechanism of MOF-derived Cox Niy @C composites by rationally controlling the Co/Ni atomic ratio and provides novel insights into the structural design of electromagnetic nanomaterials.
KW - Co Ni @C nanorods
KW - electromagnetic synergistic
KW - electromagnetic wave absorption
KW - metal−organic framework derivatives
KW - structure engineering
UR - https://www.scopus.com/pages/publications/105030866916
U2 - 10.26599/JAC.2025.9221224
DO - 10.26599/JAC.2025.9221224
M3 - 文章
AN - SCOPUS:105030866916
SN - 2226-4108
VL - 15
JO - Journal of Advanced Ceramics
JF - Journal of Advanced Ceramics
IS - 2
M1 - 9221224
ER -