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氮掺杂石墨烯与酞菁铁配位的规则偶极矩对C波段高效微波吸收性能的影响

Regulation Dipole Moments of N-Doped Graphene Coordinated with FePc Toward Highly Efficient Microwave Absorption Performance in C Band.

作者信息

Zhang Jinming, Chen Lin, Li Xing, Cao Haijie, Chen Wansong, Wang Xiaoxia

机构信息

College of Materials Science and Engineering, Qingdao University, 308 Ningxia Road, Qingdao, 266071, P. R. China.

出版信息

Small. 2024 Jul;20(27):e2308459. doi: 10.1002/smll.202308459. Epub 2024 Feb 13.

Abstract

The development of composites with highly efficient microwave absorption (MA) performance deeply depends on polarization loss, which can be induced by charge redistribution. Considering the fact that polarization centers can be easily obtained in graphene, herein, iron phthalocyanine (FePc) is used as polarization site to coordinate with nitrogen-doped graphene (FePc/N-rGO) to optimize MA performance comprehensively. The factors influencing MA properties focus on the interaction between FePc and N-rGO, and the change of dipole moments. The density functional theory (DFT) results demonstrated that FePc has strong interaction with N defect sites in graphene. The charge loss for FePc and charge accumulation for N-rGO occurred, leading to great increase of dipole moment, and the increased dipole moment can be acted as a descriptor to evaluate the enhanced polarization loss. Due to high charge redistribution capacity of N defect sites and FePc polarization centers, the FePc/N-rGO showed excellent MA properties in C band, and the minimum reflection loss value can reach -49.3 dB at 5.4 GHz with thickness of 3.8 mm. In addition, the fabric loaded with FePc/N-rGO showed good heat dissipation property. This work opens the door to the development of MA performance bound to polarization site with dipole moment.

摘要

具有高效微波吸收(MA)性能的复合材料的开发深度依赖于极化损耗,而极化损耗可由电荷重新分布引起。考虑到在石墨烯中可以很容易地获得极化中心,在此,铁酞菁(FePc)用作极化位点与氮掺杂石墨烯(FePc/N-rGO)配位,以全面优化MA性能。影响MA性能的因素集中在FePc与N-rGO之间的相互作用以及偶极矩的变化。密度泛函理论(DFT)结果表明,FePc与石墨烯中的N缺陷位点有很强的相互作用。FePc发生电荷损失,N-rGO发生电荷积累,导致偶极矩大幅增加,增加的偶极矩可作为评估增强极化损耗的一个指标。由于N缺陷位点和FePc极化中心具有高电荷重新分布能力,FePc/N-rGO在C波段表现出优异的MA性能,在5.4 GHz、厚度为3.8 mm时最小反射损耗值可达-49.3 dB。此外,负载FePc/N-rGO的织物表现出良好的散热性能。这项工作为开发与具有偶极矩的极化位点相关的MA性能打开了大门。

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