Copper Single Atoms on N‐Doped Hollow Nanocubes for Efficient Electromagnetic Wave Attenuation

材料科学 反射损耗 纳米结构 吸收(声学) 光电子学 纳米技术 热稳定性 导电体 电介质 衰减 兴奋剂 复合材料 化学工程 光学 复合数 物理 工程类 冶金
作者
Bei Li,Xiaocheng Fan,Ziqian Ma,Yujin Chen
出处
期刊:Small [Wiley]
卷期号:21 (33): e2505033-e2505033 被引量:7
标识
DOI:10.1002/smll.202505033
摘要

Abstract Rational design of unique nanostructures and suitable compositions is essential for highly‐efficient electromagnetic wave (EMW) absorbing materials. Metal single‐atoms (M‐SAs) anchored on hollow‐structured carbon‐based materials have emerged as promising absorbers owing to their unique nanostructures and tunable electronic configurations. However, the synergistic coupling mechanism between hollow structure and M‐SAs still remains poorly understood. Herein, an in situ vapor evaporation strategy is developed to anchor copper single‐atoms on N‐doped hollow carbon nanocubes (Cu‐SAs/NHCC) for enhanced EMW absorption. Theoretical calculations indicate that the incorporation of Cu‐SAs induces the charge redistribution and higher electrical conductivity, leading to stronger dielectric loss. Simulation results reveal that the hollow structure is beneficial for optimizing inadequately matched impedance. Consequently, the synergistic interaction between M‐SAs and hollow nanostructure significantly improves EMW absorbing capability, which can be verified by the experimental results. The Cu‐SAs/NHCC exhibits a minimum reflection loss ( RL min ) of −51.54 dB and an effective absorption bandwidth (EAB) of 4.34 GHz at a filler loading of 11 wt.%. Furthermore, the film consists of Cu‐SAs/NHCC and aramid nanofibers, displays exceptional flexibility, stability, mechanical, and thermal insulating performance, highlighting potential multifunctional applications of Cu‐SAs/NHCC. This work provides a viable strategy for designing high‐performance EMW absorbers based on M‐SAs with tailored nanostructures.
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