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Sung-Soo Kim 3 Articles
Microwave Absorbance of Polymer Composites Containing SiC Fibers Coated with Ni-Fe Thin Films
Tian Liu, Sung-Soo Kim, Woo-cheal Choi, Byungil Yoon
J Powder Mater. 2018;25(5):375-378.   Published online October 1, 2018
DOI: https://doi.org/10.4150/KPMI.2018.25.5.375
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AbstractAbstract PDF

Conductive and dielectric SiC are fabricated using electroless plating of Ni–Fe films on SiC chopped fibers to obtain lightweight and high-strength microwave absorbers. The electroless plating of Ni–Fe films is achieved using a two-step process of surface sensitizing and metal plating. The complex permeability and permittivity are measured for the composite specimens with the metalized SiC chopped fibers dispersed in a silicone rubber matrix. The original noncoated SiC fibers exhibit considerable dielectric losses. The complex permeability spectrum does not change significantly with the Ni–Fe coating. Moreover, dielectric constant is sensitively increased with Ni–Fe coating, owing to the increase of the space charge polarization. The improvements in absorption capability (lower reflection loss and small matching thickness) are evident with Ni–Fe coating on SiC fibers. For the composite SiC fibers coated with Ni–Fe thin films, a -35 dB reflection loss is predicted at 7.6 GHz with a matching thickness of 4 mm.

Citations

Citations to this article as recorded by  
  • Magnetic sputtering of FeNi/C bilayer film on SiC fibers for effective microwave absorption in the low-frequency region
    Tong Guo, Ben Huang, Changgeng Li, Yumin Lou, Xiu-Zhi Tang, Xiaozhong Huang, Jianling Yue
    Ceramics International.2021; 47(4): 5221.     CrossRef
Influence of Sintering Temperature on Magnetic Properties of Ni-Zn-Cu Ferrites Used for Mangetic Shielding in NFC
Yo-Han Ryu, Sung-Soo Kim
J Powder Mater. 2016;23(2):132-135.   Published online April 1, 2016
DOI: https://doi.org/10.4150/KPMI.2016.23.2.132
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AbstractAbstract PDF

This study investigates the influence of sintering temperature on the magnetic properties and frequency dispersion of the complex permeability of Ni–Zn–Cu ferrites used for magnetic shielding in near-field communication (NFC) systems. Sintered specimens of (Ni0.7Zn0.3)0.96Cu0.04Fe2O4 are prepared by conventional ceramic processing. The complex permeability is measured by an RF impedance analyzer in the range of 1 MHz to 1.8 GHz. The real and imaginary parts of the complex permeability depend sensitively on the sintering temperature, which is closely related to the microstructure, including grain size and pore distribution. In particular, internal pores within grains produced by rapid grain growth decrease the permeability and increase the magnetic loss at the operating frequency of NFC (13.56 MHz). At the optimized sintering temperature (1225-1250°C), the highest permeability and lowest magnetic loss can be obtained.

High-frequency Magnetic Properties of Ni-Zn-Co Ferrites Used for Mangetic Shielding in NFC
Yo-Han Ryu, Sung-Soo Kim
J Powder Mater. 2014;21(6):429-433.   Published online December 1, 2014
DOI: https://doi.org/10.4150/KPMI.2014.21.6.429
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AbstractAbstract PDF

This study investigated the magnetic properties and frequency dispersion of complex permeability of Ni-Zn-Co ferrites used for magnetic shielding in near field communication (NFC) system. The sintered specimens of (Ni0.7Zn0.3)1-xCoxFe2O4 composition were prepared by the conventional ceramic processing. The coercive force and saturation magnetization were measured by vibrating sample magnetometer. The complex permeability was measured by RF impedance analyzer in the range of 1 MHz~1.8 GHz. The coercive force increased and saturation magnetization decreased with increasing the Co substitution. The real and imaginary parts of complex permeability decreased and the resonance frequency increased with Co substitution, which was attributed to the increase in crystal anisotropy field and reduction in saturation magnetization. The effect of Co substitution could be found in reducing the magnetic loss to nearly zero at the operating frequency of NFC (13.56 MHz).


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