TY - JOUR
T1 - Preparation and microwave absorption properties of spherical cobalt particles
AU - Sun, Wanshuo
AU - Li, Hong
AU - Liu, Ying
AU - Zhao, Xiuchen
AU - Cheng, Jingwei
AU - Wen, Shulai
N1 - Publisher Copyright:
Copyright © 2016, Northwest Institute for Nonferrous Metal Research. Published by Elsevier BV. All rights reserved.
PY - 2016/12/1
Y1 - 2016/12/1
N2 - Spherical cobalt particles with special morphology were prepared on a large scale through a simple and low-cost liquid reduction method. The morphology, crystal structure, static magnetic properties and electromagnetic behavior of the cobalt particles were measured by SEM, XRD, VSM and vector network analyzer, respectively. The results show that saturation magnetization of the Co particles is 123 (A·m2)/kg, less than that of hcp-Co single crystals, and the coercivity is 176 ×79.6 A·m-1, larger than that of bulk cobalt crystals. Furthermore, dual-nonlinear dielectric resonances appear at 9.8 and 15 GHz. The real part of permeability decreases with the frequency increasing, presenting an excellent frequency dispersion property. Meanwhile, the imaginary part of permeability reveals a wide resonance peak over the microwave frequency range. According to the transmit-line theory, the reflection loss (RL) was predicted through the permittivity and permeability for a given frequency and absorber thickness. A maximum reflection loss of -13.2 dB is achieved at 12.4 GHz with a thickness of 5.5 mm, and the effective absorption bandwidth -10 dB) is 1.6 GHz, indicating the as-prepared cobalt particles have potential applications as a candidate for microwave absorption.
AB - Spherical cobalt particles with special morphology were prepared on a large scale through a simple and low-cost liquid reduction method. The morphology, crystal structure, static magnetic properties and electromagnetic behavior of the cobalt particles were measured by SEM, XRD, VSM and vector network analyzer, respectively. The results show that saturation magnetization of the Co particles is 123 (A·m2)/kg, less than that of hcp-Co single crystals, and the coercivity is 176 ×79.6 A·m-1, larger than that of bulk cobalt crystals. Furthermore, dual-nonlinear dielectric resonances appear at 9.8 and 15 GHz. The real part of permeability decreases with the frequency increasing, presenting an excellent frequency dispersion property. Meanwhile, the imaginary part of permeability reveals a wide resonance peak over the microwave frequency range. According to the transmit-line theory, the reflection loss (RL) was predicted through the permittivity and permeability for a given frequency and absorber thickness. A maximum reflection loss of -13.2 dB is achieved at 12.4 GHz with a thickness of 5.5 mm, and the effective absorption bandwidth -10 dB) is 1.6 GHz, indicating the as-prepared cobalt particles have potential applications as a candidate for microwave absorption.
KW - Electromagnetic behavior
KW - Liquid reduction method
KW - Microwave absorption
KW - Spherical cobalt particles
KW - Static magnetic properties
UR - http://www.scopus.com/inward/record.url?scp=85009868981&partnerID=8YFLogxK
M3 - Article
AN - SCOPUS:85009868981
SN - 1002-185X
VL - 45
SP - 3099
EP - 3103
JO - Xiyou Jinshu Cailiao Yu Gongcheng/Rare Metal Materials and Engineering
JF - Xiyou Jinshu Cailiao Yu Gongcheng/Rare Metal Materials and Engineering
IS - 12
ER -