材料科学
兴奋剂
衰减
偶极子
电磁辐射
电介质
吸收(声学)
极化(电化学)
光电子学
雷达
磁矩
微波食品加热
电磁场
磁偶极子
联轴节(管道)
电磁环境
电磁学
力矩(物理)
工作(物理)
密度泛函理论
离子
电子
激发极化
凝聚态物理
吸收光谱法
作者
Yu‐Nan Tan,Xiao-jun Zeng,Zhanming Wu,HUALIANG LV,Yu Xie,Zhichao Lou,Yanfeng Gao,Yu‐Nan Tan,Xiao-jun Zeng,Zhanming Wu,HUALIANG LV,Yu Xie,Zhichao Lou,Yanfeng Gao
标识
DOI:10.1002/adfm.202525167
摘要
Abstract 2D materials such as MXene are prime candidates for next‐generation electromagnetic response materials. However, due to difficulties in atomic level regulation and the inherent drawbacks associated with high conductivity, the production of high‐performance 2D MXene‐based electromagnetic wave (EMW) absorbers remains challenging. In this work, a dual‐element doping strategy is proposed by simultaneously doping a light rare‐earth (RE = La, Pr, Ce) ion and a heavy rare earth (RE = Er) ion. The couple doping realizes a synergistic attenuation in Mo‐MXene, effectively overcoming excessive conductivity. In performance, the light and heavy RE‐doped Mo‐MXene systems enable a universal nature for excellent EMW absorption performance (2 times and 5 times comparing with single element doped and pure Mo‐MXenes). This is because the localized 4f electronic states regulate the dielectric loss. The spin‐orbit coupling effects (so as the electron localization and dipole polarization effects of REs in density functional theory (DFT) calculations) induced by the differences in magnetic moment between heavy and light RE enhance the magnetic loss, which is confirmed by Mo‐MXene/N‐La‐Er, Mo‐MXene/N‐Pr‐Er, and Mo‐MXene/N‐Ce‐Er systems. Furthermore, radar cross‐section (RCS) simulations indicate the potential application of the Mo‐MXene/N‐RE‐Er system in radar stealth. This work presents a practical design strategy for dual‐RE modified high‐performance absorbers.
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