• 제목/요약/키워드: Nano Ni-ferrite

검색결과 35건 처리시간 0.019초

나노·바이오 융합응용을 위한 초상자성 Ni-Zn Ferrite의 자기적 특성연구 (Magnetic Properties of Superparamagnetic Ni-Zn Ferrite for Nano·Bio Fusion Applications)

  • 이승화;류연국;양계준;안중수;김철성
    • 한국자기학회지
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    • 제15권2호
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    • pp.100-105
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    • 2005
  • 최근 들어 바이오 의약품으로 응용 가능한 자성 나노 입자에 대한 많은 연구가 이루어지고 있으며, 바이오 의약품으로 응용이 가능하려면 상온에서 초상자성의 특성을 가져야만 한다. 초상자성 나노 입자의 제작이 가능한 졸-겔 법을 이용하여 초상자성 나노 입자 $Ni_{0.9}Zn_{0.1}Fe_2O_4$를 제조하여 입자의 크기 및 자기적 성질을 DTA/TGA, x-선 회절법, SEM 측정과 $M\ddot{o}ssbauer$ 분광법, 진동시료 자화율 측정기(VSM)를 이용하여 연구하였다. DTA/TGA, SEM 및 x-선 회절실험으로부터 $300^{\circ}C$에서 열처리한 입자가 순수한 cubic spinel 구조를 가지며, 평균입자 크기가 10nm인 균일한 구형상 임을 알 수 있었다. $M\ddot{o}ssbauer$ 분광실험으로 $300^{\circ}C$에서 열처리한 입자가 상온에서 초상자성의 특성을 가지고 있음을 알 수 있었으며 13K에서 573K가지 $M\ ddot{o}ssbauer$ 스펙트럼을 취하였을 때 77 K까지는 sextet의 공명흡수선(준강자성체)으로 나타났고 130K이상에서는 가운데 doublet의 공명흡수선이 나타나 400K에서는 sextet과 doublet의 면적비가 같아짐을 알 수 있었다. 13K에서의 초미세자기장은 $H_{hf}(B)=532kOe,\;H_{hf}(A)=507 kOe$이며, VSM 측정 결과로부터 초상자성의 특성을 잃어버리는 차단온도 $T_B$는 250 K로 결정하였다. 또한 자기이방성상수 $K=1.0{\times}10^6\;erg/cm^3$, 완화시간상수 ${\tau}_0=5.0{\times}10^{-13}$ s의 값을 얻었으며, 교류 발열 측정기를 이용하여 자기발열 상태를 측정한 결과 자기발열은 온열온도인 $43.6^{\circ}C$로 나타났다.

Visible light assisted photocatalytic degradation of methylene blue dye using Ni doped Co-Zn nanoferrites

  • Thakur, Preeti;Chahar, Deepika;Thakur, Atul
    • Advances in nano research
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    • 제12권4호
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    • pp.415-426
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    • 2022
  • Nickel substituted cobalt-zinc ferrite nanoparticles with composition Co0.5Zn0.5NixFe2-xO4 (x = 0.25, 0.5, 0.75, 1.0) were synthesized using a wet chemical method named citrate precursor method. Various characterizations of the prepared nanoferrites were done using X-ray powder diffractometry (XRD), Scanning electron microscopy (SEM), UV visible spectroscopy and Fourier transform spectroscopy technique (FT-IR). XRD confirmed the formation of cubic spinel structure of the samples with single phase having one characteristic peak at (311). The value of optical band gap (Eg) was found to decrease with Ni substitution and have values in the range 2.30eV to 1.69eV. A Fenton-type system was created by photocatalytic activity using source of visible light for removal of methylene blue dye. Observations revealed increase in the degradation of methylene blue dye with increasing nickel content in the samples. The degradation percentage was increased from 77.32% for x = 0.25 to 90.16% for x = 1.0 in one hour under the irradiation of visible light. Also, the degradation process was found to have pseudo first order kinetics model. Hence, it can be observed that synthesized nickel doped cobalt-zinc ferrites have good capability for water purification and its degradation efficiency enhanced with increase in nickel concentration.

EFFECTS OF HEAT TREATMENTS ON MICROSTRUCTURES AND MECHANICAL PROPERTIES OF DUAL PHASE ODS STEELS FOR HIGH TEMPERATURE STRENGTH

  • Noh, Sanghoon;Choi, Byoung-Kwon;Han, Chang-Hee;Kang, Suk Hoon;Jang, Jinsung;Jeong, Yong-Hwan;Kim, Tae Kyu
    • Nuclear Engineering and Technology
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    • 제45권6호
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    • pp.821-826
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    • 2013
  • In the present study, the effects of various heat treatments on the microstructure and mechanical properties of dual phase ODS steels were investigated to enhance the high strength at elevated temperature. Dual phase ODS steels have been designed by the control of ferrite and austenite formers, i.e., Cr, W and Ni, C in Fe-based alloys. The ODS steels were fabricated by mechanical alloying and a hot isostatic pressing process. Heat treatments, including hot rolling-tempering and normalizing-tempering with air- and furnace-cooling, were carefully carried out. It was revealed that the grain size and oxide distributions of the ODS steels can be changed by heat treatment, which significantly affected the strengths at elevated temperature. Therefore, the high temperature strength of dual phase ODS steel can be enhanced by a proper heat treatment process with a good combination of ferrite grains, nano-oxide particles, and grain boundary sliding.

Effect of Sintering Temperature on the Micro Strain and Magnetic Properties of Ni-Zn Nanoferrites

  • Venkatesh, D.;Siva Ram Prasad, M.;Rajesh Babu, B.;Ramesh, K.V.;Trinath, K.
    • Journal of Magnetics
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    • 제20권3호
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    • pp.229-240
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    • 2015
  • In this study, nanocrystalline ferrite powders with the composition $Ni_{0.5}Zn_{0.5}Fe_2O_4$ were prepared by the autocombustion method. The obtained powders were sintered at $800^{\circ}C$, $900^{\circ}C$ and $1,000^{\circ}C$ for 4 h in air atmosphere. The as-prepared and the sintered powders were characterized by X-ray diffraction (XRD), Fourier transform infrared (FT-IR) spectroscopy, and magnetization studies. An increase in the crystallite size and a slight decrease in the lattice constant with sintering temperature were observed, whereas microstrain was observed to be negative for all the samples. Two significant absorption bands in the wave number range of the $400cm^{-1}$ to $600cm^{-1}$ have been observed in the FT-IR spectra for all samples which is the distinctive feature of the spinel ferrites. The force constants were found to vary with sintering temperature, suggesting a cation redistribution and modification in the unit cell of the spinel. The M-H loops indicate smaller coercivity, which is the typical nature of the soft ferrites. The observed variation in the saturation magnetization and coercivity with sintering temperature has been attributed to the role of surface, inhomogeneous cation distribution, and increase in the crystallite size.

화학적 공침법을 이용한 침상형 페라이트 합성 (Preparation and Characterization of Nanocrystalline Spinel Ferrites by Chemical Co-precipitation)

  • ;임윤희;조영민
    • 공업화학
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    • 제22권2호
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    • pp.185-189
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    • 2011
  • 본 연구에서는 화학적 공침법을 적용하여 가스상 이산화탄소 분해를 위한 나노크기의 M-페라이트(M=Co, Ni, Cu, Zn)를 제조하였다. 열중량 분석 결과, 시험제조한 모든 시료의 최고 무게 감소율은 $350^{\circ}C$ 미만에서 발생하였다. 소성온도가 증가할수록 결정형은 우수하여 표면촉매활성화를 기대할 수 있지만, 입자결정의 크기가 크고, 비표면적이 낮은 페라이트가 합성됨을 알 수 있었다. FT-IR 분석으로부터 $375{\sim}406cm^{-1}$의 범위에서 octahedral site에 착화물이 존재함을 확인 할 수 있었으며, 이는 페라이트 내 스피넬 구조가 형성되어 있음을 보여주는 것이라고 믿는다. 본 연구로부터 얻은 이산화탄소 분해반응을 위한 금속페라이트의 최적 열처리 온도는 $500^{\circ}C$인 것으로 나타났다.