TY - JOUR
T1 - Prussian blue–derived CoNi bimetallic decoration of SiOC ceramics with enhanced dielectric attenuation for broadband microwave absorption
AU - Wang, Cunxian
AU - Xue, Jimei
AU - Wei, Hanjun
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/9/30
Y1 - 2026/9/30
N2 - Prussian blue offers compositional precision for constructing transition‑metal nanostructures; however, their integration into polymer‑derived ceramics (PDCs) for high‑frequency electromagnetic (EM) attenuation remains underexplored. Herein, a Prussian blue‑derived CoNi coordination framework is incorporated into a polysiloxane (PSO) precursor and converted into CoNi–SiOC ceramic via pressureless sintering. With increasing heat-treatment temperature, the CoNi gradually decomposed. Co catalyzed the formation of carbon nanowires (CNWs), while Ni species reacted with the SiOC matrix to form Ni2Si and generate CoxNi1-x, SiC, and SiO2, which were precipitated from the ceramic matrix, leading to the construction of a multiphase, multiscale heterogeneous interfacial architecture. Notably, the CoNi–SiOC ceramic (CNS-3) treated at 1100 °C showed outstanding EM wave attenuation capability. A minimum reflection loss of − 50.3 dB was obtained at a thickness of 2.35 mm, while an effective absorption bandwidth of 5.6 GHz was achieved when the thickness ranged from 2.35 to 2.45 mm, completely spanning the Ku band. In addition, radar cross-section (RCS) simulations based on CST revealed a reduction of up to 17.25 dB m2, highlighting the strong potential of CoNi–SiOC ceramics for EM stealth applications.
AB - Prussian blue offers compositional precision for constructing transition‑metal nanostructures; however, their integration into polymer‑derived ceramics (PDCs) for high‑frequency electromagnetic (EM) attenuation remains underexplored. Herein, a Prussian blue‑derived CoNi coordination framework is incorporated into a polysiloxane (PSO) precursor and converted into CoNi–SiOC ceramic via pressureless sintering. With increasing heat-treatment temperature, the CoNi gradually decomposed. Co catalyzed the formation of carbon nanowires (CNWs), while Ni species reacted with the SiOC matrix to form Ni2Si and generate CoxNi1-x, SiC, and SiO2, which were precipitated from the ceramic matrix, leading to the construction of a multiphase, multiscale heterogeneous interfacial architecture. Notably, the CoNi–SiOC ceramic (CNS-3) treated at 1100 °C showed outstanding EM wave attenuation capability. A minimum reflection loss of − 50.3 dB was obtained at a thickness of 2.35 mm, while an effective absorption bandwidth of 5.6 GHz was achieved when the thickness ranged from 2.35 to 2.45 mm, completely spanning the Ku band. In addition, radar cross-section (RCS) simulations based on CST revealed a reduction of up to 17.25 dB m2, highlighting the strong potential of CoNi–SiOC ceramics for EM stealth applications.
KW - CNWs
KW - CoNi–SiOC ceramics
KW - Dielectric properties
KW - EM wave absorption performance
UR - https://www.scopus.com/pages/publications/105038848871
U2 - 10.1016/j.apsusc.2026.167211
DO - 10.1016/j.apsusc.2026.167211
M3 - 文章
AN - SCOPUS:105038848871
SN - 0169-4332
VL - 741
JO - Applied Surface Science
JF - Applied Surface Science
M1 - 167211
ER -