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通过高通量热等离子体合成具有异常高磁导率的FeCo纳米链颗粒及其在高频(1-26 GHz)下的电磁波吸收特性。

High-throughput thermal plasma synthesis of FeCo nano-chained particles with unusually high permeability and their electromagnetic wave absorption properties at high frequency (1-26 GHz).

作者信息

Jang Min-Sun, Chang Mi Se, Kwon Young-Tae, Yang Sangsun, Gwak Jina, Kwon Suk Jin, Lee Joonsik, Song Kyung, Park Chong Rae, Lee Sang Bok, Park Byeongjin, Jeong Jae Won

机构信息

Metal Powder Department, Korea Institute of Materials Science (KIMS), 797 Changwondae-ro, Seongsan-gu, Changwon 51508, Korea.

出版信息

Nanoscale. 2021 Jul 15;13(27):12004-12016. doi: 10.1039/d1nr01845k.

Abstract

Herein, we introduce novel 1-dimensional nano-chained FeCo particles with unusually-high permeability prepared by a highly-productive thermal plasma synthesis and demonstrate an electromagnetic wave absorber with exceptionally low reflection loss in the high-frequency regime (1-26 GHz). During the thermal plasma synthesis, spherical FeCo nanoparticles are first formed through the nucleation and growth processes; then, the high temperature zone of the thermal plasma accelerates the diffusion of constituent elements, leading to surface-consolidation between the particles at the moment of collision, and 1-dimensional nano-chained particles are successfully fabricated without the need for templates or a complex directional growth process. Systematic control over the composition and magnetic properties of FexCo1-x nano-chained particles also has been accomplished by changing the mixing ratio of the Fe-to-Co precursors, i.e. from 7 : 3 to 3 : 7, leading to a remarkably high saturation magnetization of 151-227 emu g-1. In addition, a precisely-controlled and uniform surface SiO2 coating on the FeCo nano-chained particles was found to effectively modulate complex permittivity. Consequently, a composite electromagnetic wave absorber comprising Fe0.6Co0.4 nano-chained particles with 2.00 nm-thick SiO2 surface insulation exhibits dramatically intensified permeability, thereby improving electromagnetic absorption performance with the lowest reflection loss of -43.49 dB and -10 dB (90% absorbance) bandwidth of 9.28 GHz, with a minimum thickness of 0.85 mm.

摘要

在此,我们介绍了通过高产热等离子体合成制备的具有异常高磁导率的新型一维纳米链状FeCo颗粒,并展示了一种在高频范围(1 - 26 GHz)具有极低反射损耗的电磁波吸收体。在热等离子体合成过程中,球形FeCo纳米颗粒首先通过成核和生长过程形成;然后,热等离子体的高温区加速了组成元素的扩散,导致颗粒在碰撞瞬间表面固结,从而成功制备出一维纳米链状颗粒,无需模板或复杂的定向生长过程。通过改变Fe与Co前驱体的混合比例,即从7 : 3到3 : 7,还实现了对FexCo1-x纳米链状颗粒的组成和磁性的系统控制,从而产生了151 - 227 emu g-1的显著高饱和磁化强度。此外,发现在FeCo纳米链状颗粒上精确控制且均匀的表面SiO2涂层能有效调节复介电常数。因此,一种由具有2.00 nm厚SiO2表面绝缘层的Fe0.6Co0.4纳米链状颗粒组成的复合电磁波吸收体表现出显著增强的磁导率,从而提高了电磁吸收性能,最低反射损耗为 - 43.49 dB,-10 dB(90%吸收率)带宽为9.28 GHz,最小厚度为0.85 mm。

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