材料科学
纳米尺度
范德瓦尔斯力
铁磁性
纳米技术
感应耦合
联轴节(管道)
壳体(结构)
磁场
超材料
化学物理
凝聚态物理
光电子学
复合材料
物理
量子力学
分子
作者
Guanyu Chen,Ruixuan Zhang,Mingyue Yuan,Shuyan Xue,Yihao Liu,Bangxin Li,Kaicheng Luo,Yuxiang Lai,Jincang Zhang,Yang Yang,Renchao Che
标识
DOI:10.1002/adma.202313411
摘要
Precise manipulation of van der Waals forces within 2D atomic layers allows for exact control over electron-phonon coupling, leading to the exceptional quantum properties. However, applying this technique to diverse structures such as 3D materials is challenging. Therefore, investigating new hierarchical structures and different interlayer forces is crucial for overcoming these limitations and discovering novel physical properties. In this work, a multishelled ferromagnetic material with controllable shell numbers is developed. By strategically regulating the magnetic interactions between these shells, the magnetic properties of each shell are fine-tuned. This approach reveals distinctive magnetic characteristics including regulated magnetic domain configurations and enhanced effective fields. The nanoscale magnetic interactions between the shells are observed and analyzed, which shed light on the modified magnetic properties of each shell, enhancing the understanding and control of ferromagnetic materials. The distinctive magnetic interaction significantly boosts electromagnetic absorption at low-frequency frequencies used by fifth-generation wireless devices, outperforming ferromagnetic materials without multilayer structures by several folds. The application of magnetic interactions in materials science reveals thrilling prospects for technological and electronic innovation.
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