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Chiral structure induces spatial spiral arrangement of Fe3O4 nanoparticles to optimize electromagnetic wave dissipation

作者:Yongpeng Zhao, N. L. Wang, Huaifeng Wang, Shenglin Yuan, Mengmeng Liu, Hui Huang, Yang Zhao, Yuchao Wang, Zhijun Wu, Xin Guo, Lijia Xu · 发表于:Applied Physics Letters · 年份:2024 · DOI:10.1063/5.0200510 · 被引用次数:28 · 研究领域:Electromagnetic wave absorption materials、Metamaterials and Metasurfaces Applications、Advanced Antenna and Metasurface Technologies

The spatial anisotropic arrangement of magnetic particles is expected to increase the magnetic resonance frequency of magnetic particles and optimize the magnetic loss. Herein, helical carbon nanocoils were used as a chiral template to induce the spatial spiral distribution of Fe3O4 particles. Meanwhile, a linear control group was constructed with carbon nanofibers as a template. The three-dimensional spiral structure promotes the confined growth and uniform distribution of Fe3O4 particles. Due to the enhanced magnetic property, chiral samples exhibited superior impedance matching compared to linear samples. Experimental tests and theoretical simulation confirm that the spatial anisotropic distribution helps to increase magnetic loss and optimize impedance matching. This work illustrates the important role of chiral structure in improving the magnetic anisotropy of magnetic nanoparticles and provides an effective strategy for optimizing electromagnetic wave dissipation.