• Title/Summary/Keyword: ZnO nanopowders

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Low temperature synthesis of ZnO nanopowders by the polymerized complex method (착체중합법을 이용한 ZnO 나노분말의 저온합성)

  • 권용재;김경훈;임창성;심광보
    • Journal of the Korean Crystal Growth and Crystal Technology
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    • 제12권5호
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    • pp.229-233
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    • 2002
  • Nano-sized ZnO particles were successfully synthesized at low temperatures by a polymerized complex method via an organochemical route. The polymeric precursors could be prepared using Zn nitrate hexahydrate and a mixed solution of citric acid and ethylene glycol as a chelating agent and a reaction medium. The polymeric precursors were calcined at temperatures from 300 to $700^{\circ}C$ for 3 h, and evaluated for degree of crystallization process, thermal decomposition, surface morphology and crystallite size. The thermal decomposition and crystallization process were analyzed by TG-DTA, FI-IR and XRD. The morphology and crystallite size of the calcined particles were evaluated by scanning electron microscopy (SEM), transmittance electron microscopy (TEM) and Scherrer's equation. Crystallization of the ZnO particles was detected at $300^{\circ}C$ and entirely completed above $400^{\circ}C$. Particles calcined between 400 and $700^{\circ}C$ showed a uniform size distribution with a round shape. The average particle sizes calcined at $400^{\circ}C$ for 3 hour were 30~40nm showing an ordinary tendency to increase with the temperatures.

Application of Hierarchical ZnCo2O4 Hollow Nanofibers for Anode Materials in Lithium-ion Batteries (계층적 구조를 갖는 중공형 ZnCo2O4 나노 섬유의 리튬이온배터리 음극소재 적용)

  • Jeong, Sun Young;Cho, Jung Sang
    • Korean Chemical Engineering Research
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    • 제57권4호
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    • pp.559-564
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    • 2019
  • Hierarchical $ZnCo_2O_4$ hollow nanofibers were prepared by electrospinning and subsequent heat-treatment process. The spinning solution containing polystyrene (PS) nanobeads was electrospun to nanofibers. During heat-treatment process, PS nanobeads in the composite were decomposed and therefore generated numerous pores uniformly in the structure, which facilitated the heat transfer and gas penetration into the structure. The resulting hierarchical $ZnCo_2O_4$ hollow nanofibers were applied as an anode material for lithium-ion batteries. The discharge capacity of the nanofibers was $815mA\;h\;g^{-1}$ ($646mA\;h\;cm^{-3}$) after the 300th cycle at a high current density of $1.0A\;g^{-1}$. However, $ZnCo_2O_4$ nanopowders showed the discharge capacity of $487mA\;h\;g^{-1}$ ($450mA\;h\;cm^{-3}$) after 300th cycle. The excellent lithium ion storage property of the hierarchical $ZnCo_2O_4$ hollow nanofibers was attributed to the synergetic effects of the hollow nanofiber structure and the $ZnCo_2O_4$ nanocrystals composing the shell. The hierarchical hollow nanofiber structure introduced in this study can be extended to various metal oxides for various applications, including energy storage.

Electrical Characteristics of ZnO Nano-Powder Varistors (ZnO 나노 분말 바리스터의 전기적 특성)

  • So, Sun-Jin;Lim, Keun-Young;Jin, Hu-Jie;Kim, Jong-Ho;Park, Choon-Bae
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 한국전기전자재료학회 2004년도 추계학술대회 논문집 Vol.17
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    • pp.416-420
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    • 2004
  • Varistors based on M.Matsuoka were prepared from ZnO nanopowders, every one of which had bar type and about less 100nm length. The compact green disks were conventionally sintered in air for 2 hours at a temperature of $1050^{\circ}C$. The Varistors with nonlinear coefficient ${\alpha}=45$, leakage current $I_{\ell}=2{\times}10^{-7}A/cm^2$, operating voltage 9000v/cm, and average grain size $3{\mu}m$ were obtained. The advantages of the samples were due to greater structural homogenity, higher density, smaller grain size.

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Effect of Copper Substitution on Structural and Magnetic Properties of NiZn Ferrite Nanopowders

  • Niyaifar, Mohammad;Shalilian, Hoda;Hasanpour, Ahmad;Mohammadpour, Hory
    • Journal of Magnetics
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    • 제18권4호
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    • pp.391-394
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    • 2013
  • In this study, nickel-zinc ferrite nanoparticles, with the chemical formula of $Ni_{0.3}Zn_{0.7-x}Cu_xFe_2O_4$ (where x = 0.1- 0.6 by step 0.1), were fabricated by the sol-gel method. The effect of copper substitution on the phase formation and crystal structure of the sample was investigated by X-ray diffraction (XRD), thermo-gravimetry (TG), differential thermal analysis (DTA), Fourier transform infrared spectrometry (FT-IR), scanning electron microscopy (SEM) and transmission electron microscopy (TEM). The XRD result shows that due to the reduction of Zn content,the crystallite size of the sample increased. The results of the vibration sample magnetometer (VSM) exhibit an increase in saturation magnetization value (Ms) for samples with x ${\leq}$ 0.3 and a linear decrease for samples with x > 0.3. The variation of saturation magnetization and coercivity of the samples were then studied.

Synthesis of Nanopowders by Hydrothermal Method and their Application to Dye-sentisized Solar Cell Materials (수열합성을 이용한 나노분말 합성 및 연료감응태양전지 응용)

  • Lim, JinYoung;Ahn, Jeongseok;Ahn, Jung-Ho
    • Journal of Powder Materials
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    • 제25권4호
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    • pp.309-315
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    • 2018
  • In the present work, we synthesize nano-sized ZnO, $SnO_2$, and $TiO_2$ powders by hydrothermal reaction using metal chlorides. We also examine the energy-storage characteristics of the resulting materials to evaluate the potential application of these powders to dye-sensitized solar cells. The control of processing parameters such as pressure, temperature, and the concentration of aqueous solution results in the formation of a variety of powder morphologies with different sizes. Nano-rod, nano-flower, and spherical powders are easily formed with the present method. Heat treatment after the hydrothermal reaction usually increases the size of the powder. At temperatures above $1000^{\circ}C$, a complete collapse of the shape occurs. With regard to the capacity of DSSC materials, the hydrothermally synthesized $TiO_2$ results in the highest current density of $9.1mA/cm^2$ among the examined oxides. This is attributed to the fine particle size and morphology with large specific surface area.