A broadband metamaterial wave absorber based on carbonyl iron powder modified dielectric layer
Yuan Tian , Shuo Cheng , Guoyu Yang , Xuming Yao , Long Cheng , Yujun Li , Jianjun Jiang
International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (9) : 2294 -2303.
A broadband metamaterial wave absorber based on carbonyl iron powder modified dielectric layer
In the field of broadband metamaterial absorbers, most research efforts have focused on optimizing the resonant layers and designing multi-layer structures, but relatively little attention has been paid to the dielectric layers themselves. This paper proposed a method using carbonyl iron powder to modify the dielectric layer. This method significantly enhances the electromagnetic wave attenuation capability of the dielectric layer with the X-band range for metamaterial absorbers. A broadband absorber with a reflection loss (RL) of less than −10 dB within the frequency range of 4.98–18 GHz and covering the C, X, and Ku band was designed. This work analyzed the surface current distribution and the power loss distribution to elucidate the absorption mechanism of the absorber. It was found that the modified dielectric layer accounted for more than 30% of the total loss in the 2–18 GHz frequency band, and the effective absorption bandwidth (RL ≤ −10 dB) was almost twice that of the unmodified dielectric layer. This enhancement in absorption bandwidth is attributed to the introduction of a new electromagnetic wave loss mechanism by carbonyl iron powder. Meanwhile, the absorber exhibited good angular stability, maintaining at least 80% absorption (RL ≤ −7 dB) in the 7.0–18.0 GHz range even when the incident angle was increased to 60°. The experimental results showed that the measured results matched the simulation results well. Furthermore, compared with other methods for broadening the absorption bandwidth, the metamaterial absorber obtained by this method offers several advantages, including wideband absorption, thin profile, and a simple manufacturing process. This approach provides a new and promising direction for the design of broadband absorbers.
indium tin oxide (ITO) conductive film / carbonyl iron powder modified dielectric layer / broadband absorber / metamaterial absorber
| [1] |
G.Q. Wang, D. Yi, X.C. Jia, J.L. Chen, B. Shen, and W.G. Zheng, Structural design of compressible shape-memory foams for smart self-fixable electromagnetic shielding with reduced reflection, Mater. Today Phys., 22(2022), art. No. 100612. |
| [2] |
|
| [3] |
|
| [4] |
|
| [5] |
X. Meng, W.W. Yang, G.H. Han, et al., Three-dimensional foam-like Fe3O4@C core–shell nanocomposites: Controllable synthesis and wideband electromagnetic wave absorption properties, J. Magn. Magn. Mater., 502(2020), art. No. 166518. |
| [6] |
S.H. Kim, S.Y. Lee, Y.L. Zhang, S.J. Park, and J.W. Gu, Carbon-based radar absorbing materials toward stealth technologies, Adv. Sci., 10(2023), No. 32, art. No. e2303104. |
| [7] |
|
| [8] |
|
| [9] |
Y.L. Zhang, Y.J. Zhang, Y.P. Li, et al., Tunable microstructure and microwave absorption properties of the SmCo5/Sm2Co17 binary-phase magnetic absorbent prepared via a reduction diffusion method, J. Alloy. Compd., 973(2024), art. No. 172843. |
| [10] |
|
| [11] |
|
| [12] |
|
| [13] |
|
| [14] |
|
| [15] |
|
| [16] |
|
| [17] |
|
| [18] |
H.J. Shou, B.X. Qi, H.C. Lv, J.L. Feng, and Z.L. Mei, A low-frequency ultrathin metamaterial absorber using magnetic material, J. Appl. Phys., 135(2024), No. 8, art. No. 083105. |
| [19] |
|
| [20] |
R.B. Yang, J.J. Yang, and S.T. Lo, Wideband square spiral metamaterial absorbers based on flaky carbonyl iron/epoxy composites, AIP Adv., 10(2020), No. 1, art. No. 015141. |
| [21] |
Z.K. Lei, G.G. Tan, Q.K. Man, et al., A flexible metamaterial based on liquid metal patterns embedded in magnetic medium for lightweight microwave absorber, Mater. Res. Bull., 137(2021), art. No. 111199. |
| [22] |
B.B. Ma, F. Chen, Y.Z. Cheng, X.C. Li, and H. Luo, Constructing broadband microwave metastructure absorber based on 2D Ti3CNTx MXene magnetic composites, J. Alloy. Compd., 953(2023), art. No. 170039. |
| [23] |
R. Jaiswar, F. Mederos-Henry, V. Dupont, S. Hermans, J.P. Raskin, and I. Huynen, A ultra-wideband thin microwave absorber using inkjet-printed frequency-selective surfaces combining carbon nanotubes and magnetic nanoparticles, Appl. Phys. A, 125(2019), No. 7, art. No. 473. |
| [24] |
B.Y. Wang, S.B. Liu, B.R. Bian, et al., A novel ultrathin and broadband microwave metamaterial absorber, J. Appl. Phys., 116(2014), No. 9, art. No. 094504. |
| [25] |
|
| [26] |
|
| [27] |
|
| [28] |
|
| [29] |
W. Xiao, G.J. Peng, H.Q. Zhang, et al., Constructing a two-layer oblique honeycomb sandwich structure by LCD 3D printing for efficient electromagnetic wave absorbing, Compos. Struct., 305(2023), art. No. 116449. |
| [30] |
|
| [31] |
M. Parvinnezhad Hokmabadi, D.S. Wilbert, P. Kung, and S.M. Kim, Polarization-dependent, frequency-selective THz stereometamaterial perfect absorber, Phys. Rev. Applied, 1(2014), No. 4, art. No. 044003. |
| [32] |
S. Wu, Design of metasurface-based polarization modulators by using Smith chart method, Opt. Commun., 516(2022), art. No. 128230. |
| [33] |
|
| [34] |
|
| [35] |
W. Zheng, B. Liu, C.H. Yang, and A.B. Zhang, Optimal design of 3D macro-structures for multi-layer foams achieving ultra-broadband microwave absorption properties and high retention after immersion in brine, Composites, Part B, 268(2024), art. No. 111094. |
| [36] |
Y.Q. Zhang, H.N. Li, J.H. Ge, et al., Highly visible–NIR transparent metamaterial–window for broadband microwave absorption and shielding, Adv. Mater. Technol., 8(2023), No. 22, art. No. 2370124. |
| [37] |
M.J. Li and W. Zhang, Design of a multilayer wideband absorber based on frequency selective surface, Opt. Quantum Electron., 55(2023), No. 10, art. No. 926. |
| [38] |
M.R. Karami, B. Jaleh, M. Eslamipanah, A. Nasri, and K.Y. Rhee, Design and optimization of a TiO2/RGO-supported epoxy multilayer microwave absorber by the modified local best particle swarm optimization algorithm, Nanotechnol. Rev., 12(2023), No. 1, art. No. 20230121. |
| [39] |
J.S. Zheng, H.B. Zheng, Y.Q. Pang, B.Y. Qu, and Z. Xu, Transparent broadband absorber based on a multilayer ITO conductive film, Opt. Express, 31(2023), No. 3, art. No. 3731. |
| [40] |
W. Zhang, J.Y. Li, M.J. Li, X. Yao, and Y.H. Wan, Broadband absorber based on multilayer frequency selective surface, Int. J. RF Microwave Comput. Aided Eng., 32(2022), No. 12, art. No. e23546. |
| [41] |
S.F. Lai, Y.P. Guo, G.Y. Liu, and Y. Liu, Multilayer transparent bendable broadband microwave absorber covering the frequency band near 5 GHz, Opt. Mater. Express, 12(2022), No. 11, art. No. 4444. |
| [42] |
C. Vong, A. Chevalier, A. Maalouf, J. Ville, J.F. Rosnarho, and V. Laur, Manufacturing of a magnetic composite flexible filament and optimization of a 3D printed wideband electromagnetic multilayer absorber in X–Ku frequency bands, Materials, 15(2022), No. 9, art. No. 3320. |
| [43] |
|
| [44] |
Q. Zhou, X.W. Yin, F. Ye, et al., Optically transparent and flexible broadband microwave metamaterial absorber with sandwich structure, Appl. Phys. A, 125(2019), No. 2, art. No. 131. |
University of Science and Technology Beijing
/
| 〈 |
|
〉 |