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首页> 外文期刊>Nano-Micro Letters >3D Seed-Germination-Like MXene with In Situ Growing CNTs/Ni Heterojunction for Enhanced Microwave Absorption via Polarization and Magnetization
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3D Seed-Germination-Like MXene with In Situ Growing CNTs/Ni Heterojunction for Enhanced Microwave Absorption via Polarization and Magnetization

机译:3D种子萌发的MXENE与原位生长CNTS / Ni异质结,用于通过极化和磁化增强微波吸收

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Ti3C2Tx MXene is widely regarded as a potential microwave absorber due to its dielectric multi-layered structure. However, missing magnetic loss capability of pure MXene leads to the unmatched electromagnetic parameters and unsatisfied impedance matching condition. Herein, with the inspiration from dielectric-magnetic synergy, this obstruction is solved by fabricating magnetic CNTs/Ni hetero-structure decorated MXene substrate via a facile in situ induced growth method. Ni2+ ions are successfully attached on the surface and interlamination of each MXene unit by intensive electrostatic adsorption. Benefiting from the possible “seed-germination” effect, the “seeds” Ni2+ grow into “buds” Ni nanoparticles and “stem” carbon nanotubes (CNTs) from the enlarged “soil” of MXene skeleton. Due to the improved impedance matching condition, the MXene-CNTs/Ni hybrid holds a superior microwave absorption performance of???56.4 dB at only 2.4 mm thickness. Such a distinctive 3D architecture endows the hybrids: (i) a large-scale 3D magnetic coupling network in each dielectric unit that leading to the enhanced magnetic loss capability, (ii) a massive multi-heterojunction interface structure that resulting in the reinforced polarization loss capability, confirmed by the off-axis electron holography. These outstanding results provide novel ideas for developing magnetic MXene-based absorbers.
机译:由于其介电多层结构,Ti3C2TX Mxene广泛被认为是潜在的微波吸收器。然而,纯M×缺失的磁力损失能力导致无与伦比的电磁参数和不满的阻抗匹配条件。这里,随着介电磁协同作用的启发,通过以原位诱导的生长方法制造磁性CNT / Ni杂结构装饰的M×底物来解决这种阻塞。通过强烈的静电吸附成功地成功地连接在表面表面上并使每个MXENE单元进行互化。从可能的“种子萌发”效应中受益,“种子”Ni2 +生长成“芽”Ni纳米颗粒和“茎”碳纳米管(CNT)从MXENE骨架的扩大“土壤”。由于阻抗匹配条件的改善,MXENE-CNT / Ni杂交物具有厚度为2.4mm的56.4dB的优异的微波吸收性能。这种独特的3D架构赋予混合动力车:(i)在每个介电单元中的大规模3D磁耦合网络,其导致增强磁力损耗能力,(ii)一种导致增强偏振损耗的大量多异质结界面结构能力,由轴外电子全息术证实。这些卓越的结果为开发磁性MXENE的吸收器提供了新颖的思路。

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