TY - JOUR
T1 - Gradient pyrolysis-derived multiphase heterogeneous interfaces for enhanced electromagnetic wave absorption
AU - Fu, Yuqiao
AU - Huang, Yehong
AU - Huang, Qiongwei
AU - Tang, Kuanzhen
AU - Zhang, Na
AU - Chen, Weixing
AU - Zong, Meng
AU - Wu, Hongjing
N1 - Publisher Copyright:
© 2025 Elsevier Ltd.
PY - 2026/2
Y1 - 2026/2
N2 - Interfacial polarization loss is crucial in dielectric loss for electromagnetic wave absorption. Constructing abundant heterogeneous interfaces, alongside leveraging inherent dielectric behaviors, plays a vital role in attenuating electromagnetic waves. However, traditional methods often struggle to achieve precise construction of these interfaces. In this work, a metal-organic framework (MOF) precursor is utilized with gradient pyrolysis engineering to fabricate multiphase heterogeneous interfaces. Through in situ synthesis, a coral-like ZnFe2O4/Co x S y /C (ZCC) composite is successfully prepared. The robust interactions between the different sulfides, along with those between the sulfides and the carbon matrix, facilitated the fine-tuning of dielectric properties, electrical conductivity, and electromagnetic wave absorption characteristics. ZCC-700, in particular, attain a reflection loss as low as −66.27 dB, couple with an effective absorption bandwidth (EAB) spanning 5.01 GHz. While ZCC-800 demonstrates a reflection loss of −58.28 dB and an EAB of 5.17 GHz, ensuring efficient absorption across the S, C, and Ku frequency bands. Additionally, radar cross-section simulations at 4.8 GHz and 5.2 GHz demonstrate the radar stealth potential of ZCC-700. This study employs a gradient pyrolysis heterogenization process to regulate dielectric behavior dominated by multiphase heterogeneous interfaces and combined dielectric-magnetic coupling synergy, offering a novel strategy to optimize electromagnetic wave absorption performance.
AB - Interfacial polarization loss is crucial in dielectric loss for electromagnetic wave absorption. Constructing abundant heterogeneous interfaces, alongside leveraging inherent dielectric behaviors, plays a vital role in attenuating electromagnetic waves. However, traditional methods often struggle to achieve precise construction of these interfaces. In this work, a metal-organic framework (MOF) precursor is utilized with gradient pyrolysis engineering to fabricate multiphase heterogeneous interfaces. Through in situ synthesis, a coral-like ZnFe2O4/Co x S y /C (ZCC) composite is successfully prepared. The robust interactions between the different sulfides, along with those between the sulfides and the carbon matrix, facilitated the fine-tuning of dielectric properties, electrical conductivity, and electromagnetic wave absorption characteristics. ZCC-700, in particular, attain a reflection loss as low as −66.27 dB, couple with an effective absorption bandwidth (EAB) spanning 5.01 GHz. While ZCC-800 demonstrates a reflection loss of −58.28 dB and an EAB of 5.17 GHz, ensuring efficient absorption across the S, C, and Ku frequency bands. Additionally, radar cross-section simulations at 4.8 GHz and 5.2 GHz demonstrate the radar stealth potential of ZCC-700. This study employs a gradient pyrolysis heterogenization process to regulate dielectric behavior dominated by multiphase heterogeneous interfaces and combined dielectric-magnetic coupling synergy, offering a novel strategy to optimize electromagnetic wave absorption performance.
KW - CoS
KW - Gradient pyrolysis
KW - Microwave absorption
KW - Multiphase heterogeneous interfaces
KW - Radar cross section
UR - https://www.scopus.com/pages/publications/105022435033
U2 - 10.1016/j.carbon.2025.121013
DO - 10.1016/j.carbon.2025.121013
M3 - 文章
AN - SCOPUS:105022435033
SN - 0008-6223
VL - 247
JO - Carbon
JF - Carbon
M1 - 121013
ER -