宽带
微波食品加热
材料科学
介电常数
色散(光学)
热的
光电子学
带宽(计算)
电磁辐射
吸收(声学)
电磁仿真
衰减系数
散射参数
比吸收率
电子工程
中心频率
电磁兼容性
微波应用
部分带宽
温度系数
无线电频率
微波传输
电磁学
相对介电常数
频域
低频
作者
Haoxu Si,Yi Zhang,Mu Li,Zehui Chai,Jingwei Zhang,Cuiping Li,Chunhong Gong
标识
DOI:10.1038/s41467-026-69591-x
摘要
Ultrathin, broadband microwave absorbing materials (MAMs) are crucial for weight-sensitive and space-constrained applications. This study introduces the electromagnetic frequency dispersion coefficient (EFDC), a synergistic dielectric-magnetic parameter that moves beyond conventional complex mechanisms. Our model directly links EFDC to microwave absorption (MA) performance, guiding the design of advanced MAMs. By optimizing EFDC, we achieved an ultra-wide effective absorption bandwidth (EAB) of 7.04 GHz at 1 mm and 9.28 GHz at 1.3 mm. Moreover, the temperature invariance of EFDC ensures consistent MA performance from 298 K to 473 K, despite the differing thermal responses of permittivity and permeability. This principle outlines a systematic design strategy for fabricating ultrathin and broadband MAMs, establishing a robust framework for developing high-attenuation absorbers suitable for complex frequency and thermal environments. The authors introduce the Electromagnetic Frequency Dispersion Coefficient (EFDC), a unified parameter linking material properties to microwave absorption. It enables ultra-thin, broadband absorption with record performance and stable operation across temperatures, simplifying the design of advanced absorbing materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI