TY - JOUR
T1 - Constructing gradient impedance in hybrid C/SiC Fiber for ultra-wideband radar cross section reduction
AU - Li, Xiaoyuan
AU - Zhu, Guosong
AU - Hu, Yue
AU - Zhou, Wei
AU - Luo, Heng
AU - Fan, Xiaomeng
AU - Li, Zhuan
AU - Xiao, Peng
AU - Wu, Feixiang
AU - Li, Yang
N1 - Publisher Copyright:
© 2024
PY - 2026/8
Y1 - 2026/8
N2 - Balancing impedance matching and attenuation capabilities is always a challenge in achieving efficient broadband microwave absorption, and single-layer structures often find it difficult to balance these two points. In this study, carbon fiber and silicon carbide fiber were arranged in a grid in a PVC matrix to construct a multi-layer gradient microwave absorber. By optimizing the stacking order of fiber arrays with different spacing and composition, a gradient impedance structure was developed to minimize wave impedance mismatch. Experimental results show that the optimized five-layer structure (configuration 51,234) exhibits excellent absorption performance at 90° polarization, achieving an ultra-wide effective absorption bandwidth (EAB) of 14.1 GHz (3.9–18 GHz) and a minimum reflection loss (RL) of −34.2 dB at 8.0 GHz. HFSS-based numerical simulations reveal potential loss mechanisms: carbon fibers provide strong conduction losses and magnetic resonance, while semiconductor silicon carbide fibers play a dual role in impedance regulation and auxiliary absorption. In addition, the electrical heterogeneity at the Cf/SiCf intersection induces significant Maxwell-Wagner-Sillars (MWS) interface polarization, further enhancing energy dissipation. This study confirms that the construction of multi-layer gradient structures using hybrid fiber arrays is an effective strategy for the development of high-performance broadband absorbing materials.
AB - Balancing impedance matching and attenuation capabilities is always a challenge in achieving efficient broadband microwave absorption, and single-layer structures often find it difficult to balance these two points. In this study, carbon fiber and silicon carbide fiber were arranged in a grid in a PVC matrix to construct a multi-layer gradient microwave absorber. By optimizing the stacking order of fiber arrays with different spacing and composition, a gradient impedance structure was developed to minimize wave impedance mismatch. Experimental results show that the optimized five-layer structure (configuration 51,234) exhibits excellent absorption performance at 90° polarization, achieving an ultra-wide effective absorption bandwidth (EAB) of 14.1 GHz (3.9–18 GHz) and a minimum reflection loss (RL) of −34.2 dB at 8.0 GHz. HFSS-based numerical simulations reveal potential loss mechanisms: carbon fibers provide strong conduction losses and magnetic resonance, while semiconductor silicon carbide fibers play a dual role in impedance regulation and auxiliary absorption. In addition, the electrical heterogeneity at the Cf/SiCf intersection induces significant Maxwell-Wagner-Sillars (MWS) interface polarization, further enhancing energy dissipation. This study confirms that the construction of multi-layer gradient structures using hybrid fiber arrays is an effective strategy for the development of high-performance broadband absorbing materials.
KW - Carbon fiber
KW - Impedance matching
KW - Interfacial polarization
KW - Microwave absorption
KW - Multi-layer structure
KW - Silicon carbide fiber
UR - https://www.scopus.com/pages/publications/105036454959
U2 - 10.1016/j.mseb.2026.119476
DO - 10.1016/j.mseb.2026.119476
M3 - 文章
AN - SCOPUS:105036454959
SN - 0921-5107
VL - 330
JO - Materials Science and Engineering: B
JF - Materials Science and Engineering: B
M1 - 119476
ER -