• 제목/요약/키워드: LiMn2O4

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침전-증발법에 의해 제조된 $LiMn_2O_4$ 분말의 특성과 형태 변화 (Morphology and Characteristic change of $LiMn_2O_4$ Powder Prepared by Precipitation-Evaporation Method)

  • 김국태;심영재
    • 한국결정학회지
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    • 제15권1호
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    • pp.44-50
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    • 2004
  • Spinel structured lithium managanese oxide $(LiMn_2O_4)$ powder with well defined facetted morphology was prepared by precipitation-evaporation method. {111}, {110}, and {100} planes are mainly observed in the $LiMn_2O_4$ powder. And powder shape of tetradecahedron and octahedron was observed depending on the calcinations temperature. The observed powder morphology observed seemed to be related to the nonstoichiometry of the oxygen in the $LiMn_2O_4$ spinel structure. Oxygen nonstoichiometry might be responsible for the Jahn-teller effect and structure transition which in turn affects the surface energy of the {111}, {110}, and {100} planes. Powder shape transition from tetradecahedron to octahedron seemed to be related to the surface energy of the {111}, {110}, and {100} planes with oxygen nonstoichiometry.

스피넬상 ${LiMn_2}{O_4}$의 합성과 수소환원에 의한 활성화 (Synthesis of Spinel Phase ${LiMn_2}{O_4}$ and its Activation by Hydrogen Reduction)

  • 이동석;류대선;임병오;이풍헌
    • 한국세라믹학회지
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    • 제37권6호
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    • pp.564-568
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    • 2000
  • Spinel LiMn2O4 catalyst with submicron and single phase particles was synthesized at 48$0^{\circ}C$ for 12 hr in air by a sol-gel method. The spinel LiMn2O4 was deoxidized by hydrogen at various temperatures. Effects of physiochemical properties of the catalyst reduced by hydrogen were examined with X-ray diffractometer, thermogravimetric analysis and scanning electron microscope. The decomposition rate of carbon dioxide was measrued using the catalyst deosidized at 35$0^{\circ}C$.

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Theoretical Calculation of Zero Field Splitting of $Mn^{2+}$ Ion in $LiTaO_3$Crystal

  • Yeom, T.H;Lee, S.H
    • Journal of Magnetics
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    • 제6권3호
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    • pp.77-79
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    • 2001
  • The semi-empirical superposition model has been applied to calculate the zero field splitting parameters of $Mn^{2+}$ion in $LiTaO_3$ single crystal, assuming that $Mn^{2+}$ion occupies one of two possible sites: $Li^{l+} \;or\; Ta^{5+}$ site, respectively. The 2nd-order axial zero field splitting parameters are $958\times10^{-4}cm^{-1}\; at\; Li^{1+}$ site and $193\times 10^{-4}cm^{-1} \;at\; Ta^{5+}$ site for $Mn^{2+}$ions. The 4th-order zero field splitting parameters at $Li^{l+} \;and\; Ta^{5+}$ sites are also determined. These calculated zero field splitting parameters are very important to determine the substitutional sites of doped impurity ions in $LiTaO_3$ crystal.

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LiMn2O4/C 복합 양극을 이용한 비수계 슈퍼커패시터의 제조 (The Preparation of Non-aqueous Supercapacitors with LiMn2O4/C Composite Positive Electrodes)

  • 김경호;유지영;김민수;여태환
    • Korean Chemical Engineering Research
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    • 제45권2호
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    • pp.178-182
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    • 2007
  • $LiMn_2O_4$와 활성탄을 양극의 활물질로 사용하여 비수계 슈퍼커패시터를 제조하고 $LiMn_2O_4$의 함량에 따른 특성을 분석하였다. Cyclic voltammetry, AC impedance 분석 등을 통하여, 활성탄의 전기 이중층으로 인한 capacitive 효과에 $Li^+$ 이온의 intercalation/deintercalation에 의한 faradaic 효과가 더해진 pseudocapacitance의 발현을 확인할 수 있었으며, $LiMn_2O_4$의 함량이 증가할수록 비정전용량 및 에너지 밀도가 증가하는 것을 확인할 수 있었다. $LiMn_2O_4:C$의 비율이 0.86:0.14인 복합 양극을 사용하여, 순수 활성탄 양극 대비 2배 이상인 23.83 F/cc의 비정전용량과 17.51 Wh/L의 에너지밀도를 얻을 수 있었다. 또한, 1,000회 충방전 후에도 60% 이상 향상된 비정전용량과 에너지 밀도를 얻을 수 있었다.

물을 용매로 이용한 Sol-Ge1법에 의한 $LiMn_2O_4$ 정극 활물질의 제조와 전기화학적 특성 (Preparation and electrochemical property of $LiMn_2O_4$cathode active material by Sol-Gel method using water as solvent)

  • 정인성;구할본;박계춘
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 1998년도 추계학술대회 논문집
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    • pp.175-178
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    • 1998
  • LiMn$_2$O$_4$-based spinels has been studied extensively as positive electrode materials for rechargeable lithium and lithium ion batteries. We describe here that LiMn$_2$O$_4$ cathode active materials is preparated by sol-gel process using water as solvent, which often yields inorganic oxides of excellent phase purity and well-controlled stoichiometry. Using this process, it has been possible to synthesize phase-pure crystalline spinel LiMn$_2$O$_4$ by calcining the appropriate precursors in air at 80$0^{\circ}C$ for several hours. The influence of different time have also been explored. LiMn$_2$O$_4$ preparated in the present study exhibit the single phase of cubic and active reaction at 400 ~ $600^{\circ}C$. Electrochemical studies show that the this method- synthesized materials appear to present reversible oxidation and reduction reactions at 3.0V ~ 4.5V and cycle stability during 50 cycle.

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스피넬상 $Li{Mn_2}{O_4}$를 이용한 $CO_2$ 분해의 최적조건 (The Optimum of $CO_2$ Decomposition using Spinel Phase $Li{Mn_2}{O_4}$)

  • 이동석;임병오;양천회;이풍헌
    • 한국세라믹학회지
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    • 제38권10호
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    • pp.894-900
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    • 2001
  • 이산화탄소 분해를 위한 촉매 $Li{Mn_2}{O_4}$는 졸-겔법에 의해서 망간아세테이트와 수산화리튬을 출발물질로 사용하여 $150^{\circ}C$의 공기분위기에서 12시간 동안의 건조과정과 $480^{\circ}C$에서 12시간 동안의 열처리과정을 통해서 합성하였다. 합성한 촉매를 수소환원시키기 위해서 다른 온도에서 수소($H_2$)로 3시간동안 환원하였고, 이 수소에 의해 환원된 촉매를 이용해 $300^{\circ}C$, $325^{\circ}C$, $350^{\circ}C$, $375^{\circ}C$, $400^{\circ}C$에서 이산화탄소($CO_2$) 분해율을 조사하였다. 실험결과 수소환원과 이산화탄소 분해의 온도최적조건은 $350^{\circ}C$임을 알 수 있었다. 합성촉매를 포함해 수소에 의한 환원과 이산화탄소분해 후 촉매에 대하여 XRD분석, SEM관찰, TGA 분석을 하였다.

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Synthesis of Li2Mn3O7 and Application to Hybrid Capacitor

  • Kim, Hun-Uk;Shin, Kyoung-Hee;Lee, Bum-Suk;Jeon, Myung-Seok;Jung, Kyu-Nam;Sun, Yang-Kook;Jin, Chang-Soo
    • Journal of Electrochemical Science and Technology
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    • 제1권2호
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    • pp.97-101
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    • 2010
  • In order to apply hybrid capacitor, $Li_2Mn_3O_7$ was synthesized by combustion method using $LiNO_3$, $Li(CH_3COO){\cdot}2H_2O$ and $Mn(CH_3COO){\cdot}4H_2O$. Spinel pattern was identified the samples calcined over $400^{\circ}C$ in XRD. Intensity of $Mn_2O_3$ peak increased as the calcination temperature increased. To decide n/p ratio and to investigate electrochemical properties, charge-discharge tests of Li/$Li_2Mn_3O_7$ and Li/AC half-cell were carried out. Applying to AC/$Li_2Mn_3O_7$ hybrid capacitor, it had high discharge capacitance of 32.8 F/cc at 100 mA/g.

Structural and Electrochemical Properties of Doped LiFe0.48Mn0.48Mg0.04PO4 as Cathode Material for Lithium ion Batteries

  • Jang, Donghyuk;Palanisamy, Kowsalya;Kim, Yunok;Yoon, Won-Sub
    • Journal of Electrochemical Science and Technology
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    • 제4권3호
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    • pp.102-107
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    • 2013
  • The electrochemical properties of Mg-doped $LiFe_{0.48}Mn_{0.48}Mg_{0.04}PO_4$ and pure $LiFe_{0.5}Mn_{0.5}PO_4$ olivine cathodes are examined and the lattice parameters are refined by Rietveld analysis. The calculated atomic parameters from the refinement show that $Mg^{2+}$ doping has a significant effect in the olivine $LiFeMnPO_4$ structure. The unit cell volume is 297.053(2) ${\AA}^3$ for pure $LiFe_{0.5}Mn_{0.5}PO_4$ and is decreased to 296.177(1) ${\AA}^3$ for Mg-doped $LiFe_{0.48}Mn_{0.48}Mg_{0.04}PO_4$ sample. The doping of $Mg^{2+}$ cation with atomic radius smaller than $Mn^{2+}$ and $Fe^{2+}$ ion induces longer Li-O bond length in $LiO_6$ octahedra of the olivine structure. The larger interstitial sites in $LiO_6$ octahedra facilitate the lithium ion migration and also enhance the diffusion kinetics of olivine cathode material. The $LiFe_{0.48}Mn_{0.48}Mg_{0.04}PO_4$ sample with larger Li-O bond length delivers higher discharge capacities and also notably increases the rate capability of the electrode.

Fabrication of 3-Dimensional LiMn2O4 Thin Film

  • Park, Bo-Gun;Ryu, Jea Hyeok;Choi, Won Youl;Park, Yong-Joon
    • Bulletin of the Korean Chemical Society
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    • 제30권3호
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    • pp.653-656
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    • 2009
  • 3-Dimensionally ordered macroporous $LiMn_2O_4$ thin film was prepared by a sol-gel and dip coating method on Pt/Ti/$SiO_2$/Si substrate. An opal structure consisting of mono dispersed polystyrene beads (300 nm) was used as a template. After solution containing Mn and Li precursors was coated on the template-deposited substrate, the template and organic materials in the precursors was removed by calcination at 400 ${^{\circ}C}$. And then the 3-dimensional $LiMn_2O_4$ thin film with spinel structure was fabricated by heat treatment at 700 ${^{\circ}C}$. The structural and electrochemical property was investigated by XRD, SEM and charge-discharge cycler.