材料科学
纳米笼
电磁辐射
异质结
光电子学
电子结构
电磁学
反射损耗
消散
多物理
拓扑(电路)
兴奋剂
阻抗匹配
极化(电化学)
纳米技术
吸收(声学)
超材料
电负性
石墨烯
带宽(计算)
氧化物
电磁场
反射(计算机编程)
原子电子跃迁
纳米电子学
作者
Qi Li,Hengjie Zhang,Zirui Jia,Di Lan,Zhenguo Gao,Hua Qiu,Guanglei Wu
摘要
ABSTRACT Precisely regulating heterostructure electronic states and interfacial properties is critical for high‐performance electromagnetic wave absorption. This study first proposes a synergistic strategy combining d‐band center modulation and 3D hierarchical hetero‐interface engineering to synthesize transition metal‐substituted flower‐like core–shell structured composites. Using metal glycerate spheres as precursors, transition metal (Zn) is introduced to induce lattice substitution. Electronegativity differences drive charge rearrangement and induce a significant negative d‐band center shift, achieving precise electronic state regulation. Subsequently, combining controlled annealing with an in‐situ hydrothermal strategy realizes the vertical growth of MoNi‐LDH nanosheets on the oxide surface. The strong electronic coupling at these hetero‐interfaces further promotes the negative d‐band center shift. Through synergistic optimization of electronic and hierarchical core–shell structures, the composite achieves a minimum reflection loss of ‐42.18 dB at an ultrathin 2.1 mm matching thickness. Furthermore, an effective absorption bandwidth of 6.32 GHz is achieved at 2.5 mm thickness. Finally, using an electromagnetic energy conversion model and multiphysics simulations, the contribution mechanisms of electronic structure regulation and interfacial polarization to electromagnetic energy dissipation and radar stealth are deeply analyzed, providing precise theoretical guidance for designing novel absorbing materials.
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