Zhang Hao, Kuang Kaili, Zhang Yifeng, Sun Chen, Yuan Tingkang, Yin Ruilin, Fan Zeng, Che Renchao, Pan Lujun
School of Physics, Dalian University of Technology, Dalian, 116024, Liaoning, People's Republic of China.
Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Department of Materials Science, Fudan University, Shanghai, 200438, People's Republic of China.
Nanomicro Lett. 2025 Feb 6;17(1):133. doi: 10.1007/s40820-025-01658-8.
The construction of carbon nanocoil (CNC)-based chiral-dielectric-magnetic trinity composites is considered as a promising approach to achieve excellent low-frequency microwave absorption. However, it is still challenging to further enhance the low frequency microwave absorption and elucidate the related loss mechanisms. Herein, the chiral CNCs are first synthesized on a three-dimensional (3D) carbon foam and then combined with the FeNi/NiFeO nanoparticles to form a novel chiral-dielectric-magnetic trinity foam. The 3D porous CNC-carbon foam network provides excellent impedance matching and strong conduction loss. The formation of the FeNi-carbon interfaces induces interfacial polarization loss, which is confirmed by the density functional theory calculations. Further permeability analysis and the micromagnetic simulation indicate that the nanoscale chiral magnetic heterostructures achieve magnetic pinning and coupling effects, which enhance the magnetic anisotropy and magnetic loss capability. Owing to the synergistic effect between dielectricity, chirality, and magnetism, the trinity composite foam exhibits excellent microwave absorption performance with an ultrabroad effective absorption bandwidth (EAB) of 14 GHz and a minimum reflection of loss less than - 50 dB. More importantly, the C-band EAB of the foam is extended to 4 GHz, achieving the full C-band coverage. This study provides further guidelines for the microstructure design of the chiral-dielectric-magnetic trinity composites to achieve broadband microwave absorption.
基于碳纳米线圈(CNC)的手性介电 - 磁三位一体复合材料的构建被认为是实现优异低频微波吸收的一种有前途的方法。然而,进一步提高低频微波吸收并阐明相关损耗机制仍然具有挑战性。在此,首先在三维(3D)碳泡沫上合成手性CNC,然后与FeNi/NiFeO纳米颗粒结合形成新型手性介电 - 磁三位一体泡沫。3D多孔CNC - 碳泡沫网络提供了优异的阻抗匹配和强传导损耗。FeNi - 碳界面的形成诱导了界面极化损耗,这通过密度泛函理论计算得到证实。进一步的磁导率分析和微磁模拟表明,纳米级手性磁异质结构实现了磁钉扎和耦合效应,增强了磁各向异性和磁损耗能力。由于介电、手性和磁性之间的协同效应,三位一体复合泡沫表现出优异的微波吸收性能,具有14 GHz的超宽有效吸收带宽(EAB)和小于 - 50 dB的最小反射损耗。更重要的是,泡沫的C波段EAB扩展到4 GHz,实现了整个C波段覆盖。本研究为手性介电 - 磁三位一体复合材料的微观结构设计提供了进一步的指导,以实现宽带微波吸收。