TY - JOUR
T1 - Additively manufactured pyrolytic carbon/SiOC ceramic hierarchical hybrid metamaterials for ultra-broad electromagnetic absorption
AU - Liu, Heqiang
AU - Bai, Jinglin
AU - Huang, Kai
AU - Zhang, Yu
AU - Ma, Xuehan
AU - Xu, Yijiang
AU - Zhao, Wenyue
AU - Zhou, Qian
AU - Fan, Xiaomeng
AU - Duan, Wenyan
AU - Li, Qiaolei
AU - Liu, Xingmin
AU - Colombo, Paolo
N1 - Publisher Copyright:
Copyright © 2026. Published by Elsevier Ltd.
PY - 2026/8
Y1 - 2026/8
N2 - Creating novel electromagnetic (EM) attenuation (meta)structures by multi-scale engineering is an effective strategy to achieve ultra-broad (≥30 GHz) effective absorption bandwidth (EAB). However, most studies, especially concerning ceramic based EM metamaterials, rely on traditional structures, such as woodpile (0°-90°) scaffolds, honeycomb and so on, making the improving of the EM performance challenging. In this work, ceramic-based hierarchical hybrid metamaterials with different structures (e.g., trapezoidal, stepped and honeycomb) were innovatively established on the basis of polymer-derived defect-rich pyrolytic carbon modified SiOC (PyC/SiOC) ceramic scaffold. The intrinsic EM attenuation capability of ingredient PyC/SiOC ceramic scaffolds was maximized by optimizing the volume infill rate and EM attenuation multi-loss mechanisms. EM multi-loss capability, including conductive loss and defects-induced polarization loss, was maximized by controlling the defects populations in the PyC absorbents. The results demonstrate that the synergistic effect of multi-loss mechanisms and hierarchical hybrid metastructural engineering significantly enhances EM absorption performance. Benefiting from these advantageous multi-scale structures, a simulated ultra-broad EAB of 36.8 GHz over the range of 3.2-40 GHz was achieved. This work provides novel insights and new ideas for the design of broadband EM absorbers.
AB - Creating novel electromagnetic (EM) attenuation (meta)structures by multi-scale engineering is an effective strategy to achieve ultra-broad (≥30 GHz) effective absorption bandwidth (EAB). However, most studies, especially concerning ceramic based EM metamaterials, rely on traditional structures, such as woodpile (0°-90°) scaffolds, honeycomb and so on, making the improving of the EM performance challenging. In this work, ceramic-based hierarchical hybrid metamaterials with different structures (e.g., trapezoidal, stepped and honeycomb) were innovatively established on the basis of polymer-derived defect-rich pyrolytic carbon modified SiOC (PyC/SiOC) ceramic scaffold. The intrinsic EM attenuation capability of ingredient PyC/SiOC ceramic scaffolds was maximized by optimizing the volume infill rate and EM attenuation multi-loss mechanisms. EM multi-loss capability, including conductive loss and defects-induced polarization loss, was maximized by controlling the defects populations in the PyC absorbents. The results demonstrate that the synergistic effect of multi-loss mechanisms and hierarchical hybrid metastructural engineering significantly enhances EM absorption performance. Benefiting from these advantageous multi-scale structures, a simulated ultra-broad EAB of 36.8 GHz over the range of 3.2-40 GHz was achieved. This work provides novel insights and new ideas for the design of broadband EM absorbers.
KW - Additive manufacturing
KW - Electromagnetic absorption
KW - Metamaterials
KW - Polymer derived ceramics
UR - https://www.scopus.com/pages/publications/105044282962
U2 - 10.1016/j.carbon.2026.121866
DO - 10.1016/j.carbon.2026.121866
M3 - 文章
AN - SCOPUS:105044282962
SN - 0008-6223
VL - 259
JO - Carbon
JF - Carbon
M1 - 121866
ER -