• 제목/요약/키워드: FeCo nanoparticles

검색결과 113건 처리시간 0.024초

나노분말 CoGa0.1Fe1.9O4의 Mössbauer 분광학적 연구 (Mössbauer Studies of CoGa0.1Fe1.9O4 Nanoparticles)

  • 이승화
    • 한국자기학회지
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    • 제16권2호
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    • pp.144-148
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    • 2006
  • 초상자성 나노입자의 제작이 가능한 sol-gel법을 이용하여 초상자성 나노입자 $CoGa_{0.1}Fe_{1.9}O_4$를 제조하여 입자의 크기 및 자기적 성질을 x-선 회절법(XRD), 주사전자현미경(SEM) 측정과 $M\ddot{o}ssbauer$ 분광법, 진동시료 자화율 측정기(VSM)를 이용하여 연구하였다. SEM및 x-선 회절실험으로부터 250"C 이상에서 열처리한 입자가 순순한 cubic spinel구조를 가지며, $250^{\circ}C$에서 열처리한 $CoGa_{0.1}Fe_{1.9}O_4$의 평균입자 크기는 10 nm로 나타났으며 균일한 구형상 임을 알 수 있었다. VSM 측정 결과로부터 $250^{\circ}C$에서 열처리한 $CoGa_{0.1}Fe_{1.9}O_4$의 경우 상온에서 초상자성의 특성을 나타냈다. $M\ddot{o}ssbauer$ 분광실험으로 $250^{\circ}C$에서 열처리한 입자가 상온에서 초상자성의 특성을 가지고 있음을 확인할 수 있었으며 초상자성의 특성을 잃어버리는 차단온도 $T_B$는 250 K로 결정하였으며, 또한 자기이방성상수 $K=3.0X10^5\;ergs/cm^3$의 값을 얻었다 $250^{\circ}C$에서 열처리한$CoGa_{0.1}Fe_{1.9}O_4$의 경우 4.2K에서의 초미세 자기장은 $H_{hf}(B)=518,\;H_{hf}(A)=486\;kOe$이며, 이성질체 이동값은 $\delta_B=0.34$, $\delta_A=0.30$ 이 값은 A, B자리 모두 $Fe^{3+}$에 해당된다.

마이크로에멀젼법을 이용한 나노 CoFe2O4 분말의 실리카 코팅 (Silica Coating of Nanosized CoFe2O4 Particles by Micro-emulsion Method)

  • 김유진;유리;박은영;피재환;최의석
    • 한국세라믹학회지
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    • 제46권1호
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    • pp.69-73
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    • 2009
  • We report the preparation of nanocrystalline cobalt ferrite, $CoFe_2O_4$ particles and their surface coating with silica layers using micro emulsion method. The cobalt ferrite nanoparticles with the size 7nm are firstly prepared by thermal decomposition method. Hydrophobic nanoparticles were coated with silica using micro-emulsion method with surfactant, $NH_4OH$, and tetraethylorthosilicate (TEOS). Monodispersed and spherical silica coated cobalt ferrite nanoparticles have average particle diameter of 38 nm and narrow sized distribution.

저압 초음파 분무 공정을 이용한 γ-Fe2O3 나노입자의 합성 (Synthesis of γ-Fe2O3 Nanoparticles by Low-pressure Ultrasonic Spraying)

  • 이창우;김순길;좌용호;이재성
    • 한국분말재료학회지
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    • 제14권1호
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    • pp.19-25
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    • 2007
  • This study was focused on the optimization of low-pressure ultrasonic spraying process for synthesis of pure ${\gamma}-Fe_2O_3$ nanoparticles. As process variables, pressure in the reactor, precursor concentration, and reaction temperature were changed in order to control the chemical and microstructural properties of iron oxide nanoparticles including crystal phase, mean particle size and particle size distribution. X-ray diffraction (XRD) and transmission electron microscopy (TEM) studies revealed that pure ${\gamma}-Fe_2O_3$ nanoparticles with narrow particle size distribution of 5-15 nm were successfully synthesized from iron pentacarbonyl ($Fe(CO)_{5}$) in hexane under 30 mbar with precursor concentrations of 0.1M and 0.2M, at temperatures over $800^{\circ}C$. Also magnetic properties, coercivity ($H_c$) and saturation magnetization ($M_s$) were reported in terms of the microstructure of particles based on the results from vibration sampling magnetometer (VSM).

기상합성공정을 이용한 FePt 나노입자의 실시간 L10 상변화 (Real-time Transformation of FePt Nanoparticles to L10 Phase by the Gas Phase Synthesis)

  • 이기우;이창우;김순길;이재성
    • 대한금속재료학회지
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    • 제49권1호
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    • pp.46-51
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    • 2011
  • Real-time formation of $L1_0$ phase of FePt nanoparticles in the gas phase during ultrasonic-spray pyrolysis is first discussed in the present study. Without any post heat treatment, $L1_0$ phase of FePt nanoparticles appeared at the temperature above $900^{\circ}C$ in the gas phase synthesis. X-ray diffractometry (XRD) and transmission electron microscopy (TEM) studies revealed that FePt nanoparticles less than 10 nm in size contained small volume of $L1_0$ fct phase. However, in other samples obtained at the temperature below $900^{\circ}C$, iron oxide phase co-existed and no evidence of phase transformation was found. Thus, it is anticipated that the time of flight of particles required for crystallization and phase transformation was extended according to the increase of the collision rate. Finally, magnetic properties represented by coercivity and saturation magnetization and functional groups on the particle surface were discussed based on VSM and FT-IR results.

조영제로 활용하기 위한 폴리(비닐피롤리돈)이 코팅된 산화철 나노 입자의 제조 (Preparation of Poly(vinylpyrrolidone) Coated Iron Oxide Nanoparticles for Contrast Agent)

  • 이하영;임낙현;서진아;강길선;김정안;이해방;조선행
    • 폴리머
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    • 제29권3호
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    • pp.266-270
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    • 2005
  • Fe(CO)$_5$(철-펜타카보닐)의 열분해법을 이용하여 산화철 나노 입자를 제조하였다. 표면 조절 시약으로서 생체적 합성 고분자인 폴리(비닐피롤리돈)(PVP)을 사용하여 산화철 나노 입자의 크기를 제어하였다. 산화철 나노 입자의 형성 여부는 XRD를 통해 분석하였으며, PVP 코팅된 산화철 나노 입자의 크기는 TEM, ELS를 통하여 분석하였다. PVP 코팅 된 산화철 나노 입자의 입자 크기는 PVP/Fe(CO)$_5$의 몰비와 용매, PVP 분자량에 의해 조절되었다. PVP 함량이 증가함에 따라 입자 크기가 증가하였으며 디메틸포름아마이드를 용매로 하였을 때 $50\~100$ nm의 산화철 나노 클러스터가 형성되었고, Carbitol을 용매로 하였을 때 균일하게 분산된 10 nm 이하의 작은 PVP 코팅된 산화철 나노 입자가 형성되었다. 본 연구에서 제조된 PVP코팅된 산화철 나노 입자는 물에 잘 분산될 뿐 아니라 생체적합적인 PVP로 코팅이 되었기 때문에 in vivo에 응용할 수 있으며, 입자의 크기가 $50\~100$nm및 10 nm로 조절됨으로써 MRI 조영제로서 가능성을 가지고 있음을 확인하였다.

Removal characteristics of chromium by activated carbon/CoFe2O4 magnetic composite and Phoenix dactylifera stone carbon

  • Foroutan, Rauf;Mohammadi, Reza;Ramavandi, Bahman;Bastanian, Maryam
    • Korean Journal of Chemical Engineering
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    • 제35권11호
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    • pp.2207-2219
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    • 2018
  • Activated carbon (AC) was synthesized from Phoenix dactylifera stones and then modified by $CoFe_2O_4$ magnetic nanocomposite for use as a Cr(VI) adsorbent. Both $AC/CoFe_2O_4$ composite and AC were fully characterized by FTIR, SEM, XRD, TEM, TGA, and VSM techniques. Based on the surface analyses, the addition of $CoFe_2O_4$ nanoparticles had a significant effect on the thermal stability and crystalline structure of AC. Factors affecting chromium removal efficiency like pH, dosage, contact time, temperature, and initial Cr(VI) concentration were investigated. The best pH was found 2 and 3 for Cr adsorption by AC and $AC/CoFe_2O_4$ composite, respectively. The presence of ion sulfate had a greater effect on the chromium sorption efficiency than nitrate and chlorine ions. The results illustrated that both adsorbents can be used up to seven times to adsorb chromium. The adsorption process was examined by three isothermal models, and Freundlich was chosen as the best one. The experimental data were well fitted by pseudo-second-order kinetic model. The half-life ($t_{1/2}$) of hexavalent chromium using AC and $AC/CoFe_2O_4$ magnetic composite was obtained as 5.18 min and 1.52 min, respectively. Cr(VI) adsorption by AC and $AC/CoFe_2O_4$ magnetic composite was spontaneous and exothermic. In general, our study showed that the composition of $CoFe_2O_4$ magnetic nanoparticles with AC can increase the adsorption capacity of AC from 36 mg/L to 70 mg/L.

Synthesis and Characterization of NixMn1-xFe2O4 Nanoparticles by a Reverse Micelle Process

  • Kim, Sun-Woog;Kim, Hyeon-Cheol;Kim, Jun-Seop;Kim, Hyun-Ju;Bae, Dong-Sik
    • 한국재료학회지
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    • 제18권6호
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    • pp.298-301
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    • 2008
  • A preparation of $Ni_xMn_{1-x}Fe_2O_4$ nanoparticles produced via the reduction of Nickel nitrate hexahydrate, Manganese (II) nitrate hexahydrate and Iron nitrate nonahydrate with hydrazine in Igepal CO-520/cyclohexane reverse micelle solutions was investigated. Transmission Electron Microscope (TEM), X-ray Diffraction (XRD) and Vibration Sample Magnetometer (VSM) analyses showed that the resultant nanoparticles increased the molar ration of water to Igepal CO-520 as the concentrations of Nickel nitrate hexahyrate, Manganese (II) nitrate hexahydrate and Iron nitrate nonahydrate increased. The average size of the synthesized particles calcined at $600^{\circ}C$ for 2hrs was in the range of 20 nm to 30 nm, and the particle distribution was broadened. The phase of the synthesized particles was crystalline, and the magnetic behavior of the synthesized particles was superparamagnetism. The effect of the synthesis parameters of the molar ratio of water to surfactant and the calcination temperature was discussed.

Synthesis, Characterization and Functionalization of the Coated Iron Oxide Nanostructures

  • Tursunkulov, Oybek;Allabergenov, Bunyod;Abidov, Amir;Jeong, Soon-Wook;Kim, Sungjin
    • 한국분말재료학회지
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    • 제20권3호
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    • pp.180-185
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    • 2013
  • The iron oxides nanoparticles and iron oxide with other compounds are of importance in fields including biomedicine, clinical and bio-sensing applications, corrosion resistance, and magnetic properties of materials, catalyst, and geochemical processes etc. In this work we describe the preparation and investigation of the properties of coated magnetic nanoparticles consisting of the iron oxide core and organic modification of the residue. These fine iron oxide nanoparticles were prepared in air environment by the co-precipitation method using of $Fe^{2+}$: $Fe^{3+}$ where chemical precipitation was achieved by adding ammonia aqueous solution with vigorous stirring. During the synthesis of nanoparticles with a narrow size distribution, the techniques of separation and powdering of nanoparticles into rather monodisperse fractions are observed. This is done using controlled precipitation of particles from surfactant stabilized solutions in the form organic components. It is desirable to maintain the particle size within pH range, temperature, solution ratio wherein the particle growth is held at a minimum. The iron oxide nanoparticles can be well dispersed in an aqueous solution were prepared by the mentioned co-precipitation method. Besides the iron oxide nanowires were prepared by using similar method. These iron oxide nanoparticles and nanowires have controlled average size and the obtained products were investigated by X-ray diffraction, FESEM and other methods.

Cobalt ferrite nanotubes and porous nanorods for dye removal

  • Girgis, E.;Adel, D.;Tharwat, C.;Attallah, O.;Rao, K.V.
    • Advances in nano research
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    • 제3권2호
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    • pp.111-121
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    • 2015
  • $CoFe_2O_4$ nanotubes and porous nanorods were prepared via a simple one-pot template-free hydrothermal method and were used as an adsorbent for the removal of dye contaminants from water. The properties of the synthesized nanotubes and porous nanorods were characterized by electron diffraction, transmission electron microscopy and x-ray powder diffraction. The Adsorption characteristics of the $CoFe_2O_4$ were examined using polar red dye and the factors affecting adsorption, such as, initial dye concentration, pH and contact time were evaluated. The overall trend followed an increase of the sorption capacity reaching a maximum of 95% dye removal at low pHs of 2-4. An enhancement in the removal efficiency was also noticed upon increasing the contact time between dye molecules and $CoFe_2O_4$ nanoparticles. The final results indicated that the $CoFe_2O_4$ nanotubes and porous nanorods can be considered as an efficient low cost and recyclable adsorbent for dye removal with efficiency 94% for Cobalt ferrite nanotubes and for Cobalt ferrite porous nanorods equals 95%.

복합 전기방사법을 이용한 Fe-doped TiO2/α-Fe2O3 이중구조 나노와이어의 합성 및 자성 특성 (Synthesis of Fe-Doped TiO2/α-Fe2O3 Core-Shell Nanowires Using Co-Electrospinning and Their Magnetic Property)

  • 구본율;안효진
    • 한국재료학회지
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    • 제24권8호
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    • pp.423-428
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    • 2014
  • We synthesized Fe-doped $TiO_2/{\alpha}-Fe_2O_3$ core-shell nanowires(NWs) by means of a co-electrospinning method and demonstrated their magnetic properties. To investigate the structural, morphological, chemical, and magnetic properties of the samples, X-ray diffraction, scanning electron microscopy, transmission electron microscopy, and X-ray photoelectron spectroscopy were used, as was a vibrating sample magnetometer. The morphology of the nanostructures obtained after calcination at $500^{\circ}C$ exhibited core/shell NWs consisting of $TiO_2$ in the core region and ${\alpha}-Fe_2O_3$ in the shell region. In addition, the XPS results confirmed the formation of Fe-doped $TiO_2$ by the doping effect of $Fe^{3+}$ ions into the $TiO_2$ lattice, which can affect the ferromagnetic properties in the core region. For comparison, pure ${\alpha}-Fe_2O_3$ NWs were also fabricated using an electrospinning method. With regard to the magnetic properties, the Fe-doped $TiO_2/{\alpha}-Fe_2O_3$ core-shell NWs exhibited improved saturation magnetization(Ms) of approximately ~2.96 emu/g, which is approximately 6.1 times larger than that of pure ${\alpha}-Fe_2O_3$ NWs. The performance enhancement can be explained by three main mechanisms: the doping effect of Fe ions into the $TiO_2$ lattice, the size effect of the $Fe_2O3_$ nanoparticles, and the structural effect of the core-shell nanostructures.