材料科学
消散
吸收(声学)
反射(计算机编程)
调制(音乐)
电介质
可扩展性
带宽(计算)
光电子学
偶极子
反射损耗
纳米技术
电磁辐射
钴
工作(物理)
对偶(语法数字)
电子工程
配位复合体
介电损耗
电磁环境
工程物理
磁偶极子
过渡金属
微波食品加热
能量(信号处理)
微观结构
电磁场
栅栏
作者
Xiao Liu,Yongxin Qian,Lin Yu,Zhike Si,Lihong Wu,Anqi Wang,Xuefei Xu,Guizhen Wang
摘要
Single-atom materials with well-defined microstructures offer unique opportunities for revealing electromagnetic energy dissipation mechanisms. However, research on the optimization of local electronic states to achieve dielectric-magnetic collaborative losses remains rare. Herein, a dipole-spin synergistic regulation was realized in cobalt single-atom (Co-SA) absorbers through atomic-scale coordination engineering. Experimental and theoretical analyses revealed that asymmetric coordination facilitates enhanced dipole polarization, thereby improving dielectric loss, while the low-spin to high-spin transition increases the magnetic moment, resulting in strengthened magnetic loss. This dielectric-magnetic synergistic regulation constructs superior atomic-level absorption centers, enabling outstanding electromagnetic wave absorption (EWA) with a minimum reflection loss of -54.87 dB and an effective absorption bandwidth of 5.36 GHz. This work demonstrates a scalable approach for the precise design and optimization of high-performance EWA materials and offers a new insight into the relationships between the single-atom coordination environment and the EWA performance.
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