• Title/Summary/Keyword: Coprecipitation Method

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Synthesis of Barium Ferrite Powder by the Coprecipitation Method using Iron Pickling Waste Acid

  • Youngjae Shim;Kim, Dong-Whan;Kim, Guk-Tae
    • Journal of the Korean Ceramic Society
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    • v.38 no.5
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    • pp.401-404
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    • 2001
  • Barium ferrite powders were synthesized by the coprecipitation method using iron-pickling waste acid (IPWA) and BaCl$_2$$.$2H$_2$O as raw materials. Fe$\^$2+/ ions in the IPWA, which contains both Fe$\^$2+/ and Fe$\^$3+/ ions, were oxidized into Fe$\^$3+/ ions using H$_2$O$_2$. Proper amount of BaCl$_2$$.$2H$_2$O was dissolved into the oxidized IPWA. Using NaOH, Ba$\^$2+/ and Fe$\^$3+/ ions were coprecipitated as Ba(OH)$_2$and Fe(OH)$_3$. The coprecipitated Ba(OH)$_2$and Fe(OH)$_3$were washed and dried. Barium ferrite powders were obtained by calcining the dried Ba(OH)$_2$and Fe(OH)$_3$mixture from 400$\^{C}$ to 1000$\^{C}$ with a 100$\^{C}$ interval. Barium ferrite powders were characterized by X-ray diffraction, SEM, and VSM. It was found that barium ferrite powders could be synthesized at around 630$\^{C}$. The synthesized barium ferrite powders showed hexagonal plate shapes with a fairly uniform size. The barium ferrite powder calcined at 900$\^{C}$ showed good magnetic properties, saturation magnetization of 67emu/g and maximum coercivity of 5000 Oe.

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Stabilization of High Nickel Cathode Materials with Core-Shell Structure via Co-precipitation Method (공침법을 통하여 합성된 코어-쉘 구조를 가지는 하이 니켈 양극 소재 안정화)

  • Kim, Minjeong;Hong, Soonhyun;Jeon, Heongkwon;Koo, Jahun;Lee, Heesang;Choi, Gyuseok;Kim, Chunjoong
    • Korean Journal of Materials Research
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    • v.32 no.4
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    • pp.216-222
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    • 2022
  • The capacity of high nickel Li(NixCoyMn1-x-y)O2 (NCM, x ≥ 0.8) cathodes is known to rapidly decline, a serious problem that needs to be solved in a timely manner. It was reported that cathode materials with the {010} plane exposed toward the outside, i.e., a radial structure, can provide facile Li+ diffusion paths and stress buffer during repeated cycles. In addition, cathodes with a core-shell composition gradient are of great interest. For example, a stable surface structure can be achieved using relatively low nickel content on the surface. In this study, precursors of the high-nickel NCM were synthesized by coprecipitation in ambient atmosphere. Then, a transition metal solution for coprecipitation was replaced with a low nickel content and the coprecipitation reaction proceeded for the desired time. The electrochemical analysis of the core-shell cathode showed a capacity retention of 94 % after 100 cycles, compared to the initial discharge capacity of 184.74 mA h/g. The rate capability test also confirmed that the core-shell cathode had enhanced kinetics during charging and discharging at 1 A/g.

A Synthesis and Characteristics for Zirconia Powders by Coprecipitation Method ; III) The Properties and Sinterabilities of ZrO2-Y2O3-Bi2O3 (공침법에 의한 지르코니아분말의 합성 및 특성 III) ZrO2-Y2O3-Bi2O3의 특성 및 소결성)

  • 윤종석;이동인;오영제;이희수
    • Journal of the Korean Ceramic Society
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    • v.26 no.5
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    • pp.655-660
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    • 1989
  • The physical properties and sinterabilities of ZrO2-Y2O3-Bi2O3 ternary system powder prepared by coprecipitation were investigated. The crystallization temperatures of ternary system were increased and the specific surface areas were decreased with increasing Bi2O3 amount as sintering agents both PSZ and FSZ. Especially, the partially stabilized zirconia showed monoclinic phase. The sinterability was increased with the amount of Bi2O3 added which caused liquid phase sintering.

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The Microstructure and Magnetic Properties of YIG Powders Synthesized by a Coprecipitaion and a Sonochemical Process

  • Hong, Seong-Min;Kim, Yong-Il;Kim, Cheol-Gi
    • Journal of Magnetics
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    • v.14 no.4
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    • pp.165-167
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    • 2009
  • Nano-sized Yttrium iron garnet (YIG;$Y_3Fe_5O_{12}$) particles have been synthesized by using coprecipitation and a heat treatment process. The YIG particles were made using a nitrate or a chloride salt solution. The pH concentration of the solution was fixed at 12. Spherical shaped YIG particles were made with a size of about 20 nm. The magnetization value of the particles was smaller than the bulk value but their coercive field showed a high value.

A Study on the Electrical and Optical Properties of PZT Produced by Coprecipitation -The Effect of Nd- (공침법에 의한 PZT제조와 전기적 및 광학적 성질에 관한 연구 -Nd첨가에 따른 영향-)

  • 김성렬;이병우;김복희;안영필
    • Journal of the Korean Ceramic Society
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    • v.27 no.2
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    • pp.244-248
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    • 1990
  • The effect of Nd3+ on the electrical and optical properties in PZT ceramics were investigated. The powders were prepared by the coprecipitation method using the salt solutions and Nd3+ was partially substituted for Pb2+ of Pb(Zr0.54 Ti0.46)O3. The coprecipitate were obtained under pH 11.8-12 and the single phase of PLZT powders were synthesized at about 500$^{\circ}C$. In the case of specimens with 4at.% of Nd which were sintered at 1250$^{\circ}C$ for 55 hours under 1atm, showed 50% of transmittance for 600nm(wave length).

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Selective Hydrogenation of 1,3-Butadiene over Supported Nickel Catalyst Obtained from Nickel-Zirconia Solid Solution

  • Chang, Jong-San;Ryu, Jae-Oak;Lee, Jong-Min;Park, Sang-Eon;Hong, Do-Young;Jhung, Sung-Hwa
    • Bulletin of the Korean Chemical Society
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    • v.26 no.10
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    • pp.1512-1514
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    • 2005
  • Catalytic properties of Ni-Zr$O_2$ catalysts prepared by coprecipitation have been studied for the gas-phase hydrogenation of 1,3-butadiene to butenes. The coprecipitation method led to the solid solution of Ni-Zr$O_2$, which contains highly resistant Ni species to thermal reduction with H2. Nickel species of the solid solution were highly dispersed in the ZrO2 lattice, so that the reduced catalysts were selective for hydrogenation of 1,3-butadiene to butenes (99.9%) even in the presence of 1-butene.

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.