• Title/Summary/Keyword: Ni-ferrite

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Enhancement of Lowsintering Temperature and Electromagnetic Properties of (NiCuZn)-Ferrites for Multilayer Chip Inductor by Using Ultra-fine Powders (초미세 분말합성에 의한 칩인덕터용 (NiCuZn)-Ferrites의 저온소결 및 전자기적 특성 향상)

  • 허은광;강영조;김정식
    • Journal of the Microelectronics and Packaging Society
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    • v.9 no.4
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    • pp.47-53
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    • 2002
  • In this study, two different (NiCuZn)-ferrite which were fabricated by using ultra-fine powders synthesized by the wet processing and conventionally commercialized powder, were investigated and compared each other in terms of the low temperature sintering and electromagnetic properties. Composition of x and w in $(Ni_{0.4-x}Cu_xZn_{0.6})_{1+w}(Fe_2O_4)_{1-w}$ were controlled as 0.2 and 0.03, respectively. The sintering temperature were $900^{\circ}C$ for ultra-fine powders by way of initial heat treatment and $1150^{\circ}C$ for commercialized powders. The (NiCuZn)-ferrite by ultra-fine powders showed love. sintering temperature than that of commercialized powders by over $200^{\circ}C$, and excellent electromagnetic properties such as the quality factor which is a important factor in the multi-layered chip inductor. In addition, characteristics of B-H hysteresis, crystallinity, microstructure and powder morphology were analyzed by a vibrating sample method(VSM), x-ray diffractometer(XRD), transmission electron microscope (TEM) and scanning electron microscope(SEM).

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Fabrication of Nano-Sized Ni-ferrite Powder from Waste Solution Produced by Shadow Mask Processing (새도우마스크 제조공정 중 발생되는 폐액으로부터 니켈 페라이트 나노 분말 제조)

  • 유재근;서상기
    • Journal of Powder Materials
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    • v.10 no.4
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    • pp.262-269
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    • 2003
  • Nano-sized Ni-ferrite powder was fabricated by spray pyrolysis process using the waste solution resulting from shadow mask processing. The average particle size of the powder was below 100 nm. The effects of the concentration of raw material solution, the nozzle tip size and air pressure on the properties of powder were studied. As the concentration increased, the average particle size of the powder gradually increased and its specific surface area decreased, but size distribution was much wider and the fraction of the Ni-ferrite phase greatly increased as the concentration increasing. As the nozzle tip size increased from 1 mm to 2 mm, the average particle size of the powder decreased. In case of 3 mm nozzle tip size, the average particle size of the powder increased slightly. On the other hand, in case of 5 mm nozzle tip size, average particle size of the powder decreased. Size distribution of the powder was unhomogeneous, and the fraction of the Ni-ferrite phase decreased as the nozzle tip size increasing. As air pressure increased up to 1 kg/$cm^2$, the average particle size of the powder decreased slightly, on the other hand, the fraction of the Ni-ferrite phase was almost constant. In case of 3kg/$cm^2$ air pressure, average particle size of the powder and the fraction of the Ni-ferrite phase remarkably decreased, but size distribution was narrow.

Preparation and Characteristics of the Ni-Ferrite Encapsulated Mo-Permalloy Powder

  • Park, Hyun-Kyu;Ji, In-Geol;Oh, Jae-Hee;Ko, Taeg-Yung
    • Journal of the Korean Ceramic Society
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    • v.43 no.11 s.294
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    • pp.700-702
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    • 2006
  • We prepared a Ni-ferrite encapsulated Mo-permalloy powder through simple electroless plating and heat treatment. It was observed that Ni-ferrite particles formed in a spherical form on each Mo-permalloy grain. The microstructure and the magnetic characteristics of the encapsulated powders depended strongly on oxidation time in the heat-treatment. When the powder was oxidized for 60 min, a dense Ni-ferrite layer covered the Mo-permalloy grain, which in turn exhibited high saturation magnetization of 85.8 emu/g. The magnetic core prepared additionally with the encapsulated powder exhibited a resonant frequency of 12 kHz.

Preparation and Properties of Ni-Zn Ferrite by Coprecipitation Method (공침법에 의한 Ni-Zn Ferrite의 제조 및 물성연구)

  • Jung Goo Eun;Koh Jae Gui
    • Korean Journal of Materials Research
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    • v.14 no.5
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    • pp.338-342
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    • 2004
  • Ni-Zn ferrite powder was obtained by wet method that was to be coprecipitated the metal nitrates, Fe($NO_3$)$_3$$9H_2$O, Ni($NO_3$)$_2$$6H_2$O, Zn($NO_3$)$_2$$6H_2$O to make a high permeability material. The composition of the ferrite powder was $Fe_2$$O_3$ 52 mol%, NiO 14.4 mol%, ZnO 33.6 mol%. Ni-Zn ferrite powder was compounded by precipitating metal nitrates with NaOH in vessel at the synthetic temperature of $90^{\circ}C$ for 8 hours. Calcination temperature and sintering temperature were $700^{\circ}C$ and $1150^{\circ}C$$1250^{\circ}C$, respectively, for 2 hours. And the other ferrite powder was also prepared by the wet ball milling that was to be mixed the metal oxides as same as the above chemical composition. We studied the properties of the powder and the electromagnetic characteristics of the sintered cores obtained from there two different processes. Wet direct process produced smaller particle size with narrower distribution of the size and more purified ferrite whose sintered cores had high permeability and high magnetization.

The Magnetic and Microwave Absorbing Characteristics of Ni-Zn Ferrite Composites (니켈-아연 페라이트복합재의 자기적특성과 전파흡수특성)

  • 조성백;오재희
    • Journal of the Korean Magnetics Society
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    • v.3 no.2
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    • pp.115-120
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    • 1993
  • The relationship between magnetic parameter and microwave absorbing performance evaluation factor of electomagnetic wave absorber such as matching frequency, matching thickness were investigated for Ni-Zn ferrite composites. It was identified that the maximum value of ${\mu}_{r}$" is shift to low frequency with decrese Ni/Zn ratio and the value of ${\mu}_{r}$" is maximum in the case of Ni/Zn=1. All Ni-Zn ferrite composites in this study have two matching frequencies in 1-12 GHz frequency. It can be suggested that $f_{m1}$ is proportional to resonance frequency and $f_{m2}$ is proportional to the saturation magnetization.

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Ag and Cu Precipitation in Multi-Layer Chip Inductors Prepared with V2O5 Doped NiCuZn Ferrites (V2O5 도핑된 NiCuZn 페라이트로 제조된 칩인덕터에서의 Ag/cu 석출)

  • Je, Hae-June;Kim, Byung-Kook
    • Korean Journal of Materials Research
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    • v.13 no.8
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    • pp.503-508
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    • 2003
  • The purpose of this study is to investigate the effect of $V_2$$O_{5}$ addition on the Ag and Cu precipitation in the NiCuZn ferrite layers of 7.7${\times}$4.5${\times}$1.0 mm sized multi-layer chip inductors prepared by the screen printing method using 0∼0.5 wt% $V_2$$O_{5}$ -doped ferrite pastes. With increasing the $V_2$$O_{5}$ content and sintering temperature, Ag and Cu oxide coprecipitated more and more at the polished surface of ferrite layers during re-annealing at $840^{\circ}C$. It was thought that during the sintering process, V dissolved in the NiCuZn ferrite lattice and the Ag-Cu liquid phase of low melting point was formed in the ferrite layers due to the Cu segregation from the ferrite lattice and Ag diffusion from the internal electrode. During re-annealing at $840^{\circ}C$, the Ag-Cu liquid phase came out the polished surface of ferrite layers, and was decomposed into the isolated Ag particles and the Cu oxide phase during the cooling process.

Impedance Matching of Electrically Small Antenna with Ni-Zn Ferrite Film

  • Lee, Jaejin;Hong, Yang-Ki;Lee, Woncheol;Park, Jihoon
    • Journal of Magnetics
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    • v.18 no.4
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    • pp.428-431
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    • 2013
  • We demonstrate that a partial loading of $Ni_{0.5}Zn_{0.5}Fe_2O_4$ (Ni-Zn ferrite) film remarkably improves impedance matching of electrically small $Ba_3Co_2Fe_{24}O_{41}$ ($Co_2Z$) hexaferrite antenna. A 3 ${\mu}m$ thick Ni-Zn ferrite film was deposited on a silicon wafer by the electrophoresis deposition process and post-annealed at $400^{\circ}C$. The fabricated Ni-Zn ferrite film has saturation magnetization of $268emu/cm^3$ and coercivity of 89 Oe. A partial loading of the Ni-Zn ferrite film on the $Co_2Z$ hexaferrite helical antenna increases antenna return loss to 24.7 dB from 9.0 dB of the $Co_2Z$ antenna. Experimental results show that impedance matching and maximum input power transmission to the antenna without additional matching elements can be realized, while keeping almost the same size as the $Co_2Z$ antenna size.

Enhancement of Electromagnetic Properties of (NiCuZn)-Ferrites by Using Ultra-fine Powders Synthesis (나노분말합성에 의한 (NiCuZn)-Ferrites의 전자기적 특성 향상)

  • 허은광;강영조;김정식
    • Proceedings of the International Microelectronics And Packaging Society Conference
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    • 2002.11a
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    • pp.109-113
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    • 2002
  • 본 연구에서는 공침법에 의한 초미세분말을 이용하여 제조된 (NiCuZn)-ferrite와 건식법을 이용하여 제조된 (NiCuZn)-ferrite의 저온소결 특성 및 전자기적 특성을 상호 비교 분석하였다. 조성은 (N $i_{0.4-x}$C $u_{x}$Z $n_{0.6}$)$_{1+w}$(F $e_2$ $O_4$/)$_{1-w}$에서 x의 값을 0.2, w의 값은 0.03으로 고정하였고, 소결은 공침법으로 합성된 분말의 경우 초기열처리과정을 거쳐 최종적으로 90$0^{\circ}C$에서, 건식법의 경우 11$50^{\circ}C$의 온도에서 진행하였다. 그 결과, 공침법으로 제조된 (NiCuZn)-ferrite는 건식법으로 제조된 (NiCuZn)-ferrite보다 20$0^{\circ}C$이상 낮은 소결온도에서 높은 소결밀도 값을 가졌으며, 품질계수 등 칩 인덕터에서 중요한 요소인 전자기적 특성이 우수하게 나타났다. 또한, 공침법으로 합성된 페라이트는 분말의 초기열처리온도에 따라 최종소결 특성이 크게 변하였다. 그밖에 공침법과 건식법으로 합성한 (NiCuZn)-ferrite의 결정성, 미세구조들을 XRD, SEM, TEM을 이용하여 비교 고찰하였다.하였다.다.

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A Study on Frequency and the Physical Properties of Ni-Cu-Zn Ferrites with the Variation of Ni Addition and Temperature Prepared by Co-Precipitation Method (공침법으로 제조한 Ni-Cu-Zn Ferrite의 Ni 첨가량과 온도에 따른 주파수 및 물리적 특성 연구)

  • Kim, Moon-Suk;Koh, Jae-Gui
    • Journal of the Korean Magnetics Society
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    • v.15 no.5
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    • pp.282-286
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    • 2005
  • Ni-Cu-Zn ferrites were prepared by the co-precipitation and ferrite microwave absorbers on low temperature sintering were investigated in this work. The properties of its microwave absorbing and physical were analyzed into variations of Ni addition, calcination temperature, sintering temperature. From the analysis of X-ray diffraction patterns, we can see that all the particles have only a single phase spinel structure. In addition, the powders particle size distribution obtained the nano size. By increasing the Ni additive, the permeability of the powders was decreased and the loss factor increased at sintering temperature $1100^{\circ}C$. Also, we considered that it can used high frequency rage. We found that the $(Ni_{0.7}Cu_{0.2}Zn_{0.1}O)_{1.02}(Fe_{2}O_3)_{0.98}$ appeared microwave absorbing properties better than other composition.