• 제목/요약/키워드: $o-LiMnO_2$

검색결과 475건 처리시간 0.026초

$LiMn_{2-y}M_{y}O_4$ 정극 활물질의 전기화학적 특성 - I. $LiMn_{2-y}Mg_{y}O_4$의 결정 구조 및 AC Impedance 특성 (The Electrochemical Characterization of $LiMn_{2-y}M_{y}O_4$ Cathode Material - I. Crystal Structure and AC Impedance Properties of $LiMn_{2-y}Mg_{y}O_4$)

  • 정인성;김종욱;구할본;김형곤;손명모
    • 한국전기전자재료학회논문지
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    • 제14권4호
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    • pp.309-315
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    • 2001
  • Crystallized $LiMn_{2-y}Mg_{y}O_4$ powder was prepared by calcing the mixture of LiOH.$H_2O$, $MnO_2$ and MgO at $800^{\circ}C$ for 36h in an air atmosphere. The structure of $LiMn_{2-y}Mg_{y}O_4$ crystallites was analyzed from powder X-ray diffraction data as a cubic spinel, space group Fd3m. Though all cathode material showed spinel phase based on cubic phase in X-ray diffraction, other peaks gradually exhibited and became intense with increasing y value in $LiMn_{2-y}Mg_{y}O_4$. However, ununiform which calculated by (111) face and (222) face was constant in spite of the increase of y value, except pure $LiMn_2O_4$. AC impedance of Li/$LiMn_{2-y}Mg_{y}O_4$ cells revealed the similar resistance of about $70\Omega$ before cycling. In addition, The impedance of Li/$LiMn_{1.9}Mg_{0.1}O_4$ cell changed during charge and discharge or after cycling.

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Li 치환된 $Li[Li_yMn_{2-y}]O_4$ 정극 활물질의 결정 구조와 충방전 용량과의 관계 (The relation of the crystal phase and the charge/discharge capacity of $Li[Li_yMn_{2-y}]O_4$ cathode materials substituted Li)

  • 정인성;구할본;박복기;손명모;이헌수
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2000년도 춘계학술대회 논문집 전자세라믹스 센서 및 박막재료 반도체재료 일렉트렛트 및 응용기술
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    • pp.117-120
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    • 2000
  • The relation of crystal phase and charge/discharge capacity of $Li[Li_yMn_{2-y}]O_4$ were studied for different degrees of Li substitution (y). All cathode material showed spinel phase based on cubic phase in X-ray diffraction. Other peaks didn't show in spite of the increase of y value in $Li[Li_yMn_{2-y}]O_4$. Ununiform of $Li[Li_yMn_{2-y}]O_4$ which calcinated by (111) face and (222) face was more stable than that of pure $LiMn_2O_4$. In addition, At TG analysis, calcined $Li[Li_{0.1}Mn_{1.9}]O_4$ exhibited much mass loss at $800{\mu}m$. The cycle performance of the $Li(Li_yMn_{2-y}]O_4$ was improved by the substitution of $Li^{1+}$ for $Mn^{3+}$ in the octahedral sites. Specially, $Li[Li_{0.08}Mn_{1.92}]O_4$ and $Li[Li_{0.1}Mn_{1.9}]O_4$ cathode materials showed the charge and discharge capacity of about 125mAh/g at first cycle, and about 95mAh/g after 70th cycle. It is excellent than that of pure $LiMn_2O_4$, which 125mAh/g at first cycle, 65mAh/g at 70th.

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리튬 폴리머 전지용 $LiMnO_2$의 열처리 온도에 따른 충방전 특성 (Charge-discharge Properties of $LiMnO_2$ as a Function of Heat Treatment Temperature for Lithium Polymer Batteries)

  • 조영재;위성동;김상기;구할본;김종욱;박계춘
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2001년도 춘계학술대회 논문집 센서 박막재료
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    • pp.23-26
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    • 2001
  • The properties of $LiMnO_2$ was studied as a cathode active material for lithium polymer batteries. $LiMnO_2$ cathode active materials were synthesized by the reaction of $LiOH{\cdot}H_2O$ and $Mn_2O_3$ at various temperature under argon atmosphere. The powders were characterized by the X -ray diffraction. For lithium polymer battery applications, the $LiMnO_2$ cell was characterized electrochemically by charge-discharge experiments and a.c. impedance spectroscopy. And the relationship between the characteristics of powders and electrochemical properties was studied in this research. A maximum discharge capacity of 160~170 mAh/g for o-$LiMnO_2$ cell was achieved. The capacity of o-$LiMnO_2$ electrode demonstrated better than of the spinel $LiMnO_2$ by solid-state reaction.

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카본을 부극으로 사용하는 $LiMnO_2$ 전지의 전기화학적 특성 (Charge/Discharge Characteristics of $LiMnO_2$ Battery using Carbon as Anode Materials)

  • 김은미;임승규;김남인;구할본
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2008년도 추계학술대회 논문집 Vol.21
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    • pp.277-278
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    • 2008
  • Orthorhombic $LiMnO_2$(o-$LiMnO_2$) has attracted public attentions as a cathode materials of Lithium ion battery because it has low cost and high theoretical discharge capacity of 285mAh $g^{-1}$. In our study, o-$LiMnO_2$ is synthesized by quenching method. To verify their phase structure, X-ray diffraction is accomplished. Test cells are assembled to check electrochemical characteristics using acquired o-$LiMnO_2$ cathode and carbon anode. Charge/Discharge cycling was carried out for 50cycles. And impedance was measured at 1, 2, 5, 10, 30, 50cycle. During cycle test, the max discharge capacity was recorded 139mAh $g^{-1}$ at 10cycle.

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고상반응법을 이용한 Li2MnSiO4 합성 (Synthesis of Li2MnSiO4 by Solid-state Reaction)

  • 김지수;심중표;박경세;선호정
    • 한국전기전자재료학회논문지
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    • 제25권5호
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    • pp.398-402
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    • 2012
  • Synthesis of $Li_2MnSiO_4$ was attempted by the conventional solid-state reaction method, and the phase formation behavior according to the change of the calcination condition was investigated. When the mixture of the three source materials, $Li_2O$, MnO and $SiO_2$ powders, were used for calcination in air, it was difficult to develop the $Li_2MnSiO_4$ phase because the oxidation number of $Mn^{2+}$ could not be maintained. Therefore, two-step calcination was applied: $Li_2SiO_3$ was made from $Li_2O$ and $SiO_2$ at the first step, and $Li_2MnSiO_4$ was synthesized from $Li_2SiO_3$ and MnO at the second step. It was easy to make $Li_2MnSiO_3$ from $Li_2O$ and $SiO_2$. $Li_2MnSiO_4$ single phase was developed by the calcination at $900^{\circ}C$ for 24 hr in Ar atmosphere as the oxidation of $Mn^{2+}$ was prevented. However, the $Li_2MnSiO_4$ was ${\gamma}-Li_2MnSiO_4$, one of the polymorph of $Li_2MnSiO_4$, which could not be used as the cathode materials in Li-ion batteries. By applying the additional low temperature annealing at $400^{\circ}C$, the single phase ${\beta}-Li_2MnSiO_4$ powder was synthesized successfully through the phase transition from ${\gamma}$ to ${\beta}$ phase.

소성법에 의한 LiMn2O4의 제조시 반응 온도의 영향과 전기화학적 특성 (The Effect of Reaction Temperature for Synthesis of LiMn2O4 by Calcination Process and the Electrochemical Characteristics)

  • 이철태;이진식;김현중
    • 공업화학
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    • 제9권2호
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    • pp.220-225
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    • 1998
  • 스피넬 구조의 $LiMn_2O_4$$Li_2CO_3$$MnO_2$를 사용하여 $750{\sim}900^{\circ}C$에서 소성해서 합성하였다. 이 때 $850^{\circ}C$에서 12시간 동안 소성할 경우 입방정 구조의 $LiMn_2O_4$가 얻어졌다. 그러나 $900^{\circ}C$에서 소성해서 합성할 경우 산소의 발생으로 인해서 0.06M의 $Mn^{+4}$$Mn^{+3}$로 전이되면서 $LiMn_2O_{3.97}$이 얻어졌다. 이것은 스피넬 구조의 $LiMn_2O_4$에서 octahedral site의 $Mn^{+3}$ 이온의 증가로 인해서 Jahn-Teller distortion이 발생되며, 이로 인해 $3.6{\sim}4.3V_{Li/Li}+$의 전위범위에서 $0.25mA/cm^2$으로 15 cycle 동안 충 방전 실험한 결과 $900^{\circ}C$에서 합성된 스피넬 구조의 $LiMn_2O_4$는 82 mAh/g에서 50 mAh/g으로 용량 감소가 나타났으나 $850^{\circ}C$에서 합성한 $LiMn_2O_4$는 102~64 mAh/g을 유지했다.

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수열합성 조건에 따른 나노로드 클러스터형 $MnO_2$의 상변화와 이를 이용한 $LiMn_2O_4$의 리튬이온전지 양전극 특성 (Phase Change of Nanorod-Clustered $MnO_2$ by Hydrothermal Reaction Conditions and the Lithium-ion Battery Cathode Properties of $LiMn_2O_4$ Prepared from the $MnO_2$)

  • 강근영;최민규;이영기;김광만
    • Korean Chemical Engineering Research
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    • 제49권5호
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    • pp.541-547
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    • 2011
  • $MnSO_45H_2O$$(NH_4)S_2O_8$의 수열반응으로 1차원 나노로드들이 침상으로 클러스터화된 구조의 $MnO_2$를 제조하고 그 모폴로지와 결정성을 분석하였다. 수열반응의 조건에 따라 ${\alpha}$-, ${\beta}$-, ${\gamma}-MnO_2$ 등의 전구체가 제조될 수 있는데, 고농도 반응물 및 높은 수열합성 온도($150^{\circ}C$)에서 전기화학적 활성이 우수한 나노로드 클러스터 ${\beta}-MnO_2$의 생성을 확인하였다. 또한 리튬화제 $LiC_3H_3O_2{\cdot}2H_2O$의 농도와 열처리 온도를 변화시키면서 $MnO_2$를 리튬화하여 스피넬계 $LiMn_2O_4$를 제조하고 리튬이온전지 양전극으로서의 특성을 조사하였다. 결과적으로 나노로드 클러스터형 ${\beta}-MnO_2$로부터 고농도 리튬화제와 $800^{\circ}C$ 열처리를 통해 제조한 $LiMn_2O_4$가 정방형 스피넬에 가장 가까운 구조임을 확인하였으며, 120 mAh/g의 우수한 초기 방전용량을 나타내었다.

다양한 $MnO_{2}$ 구조에 따른 2차전지용 $Li_{x}Mn_{2}O_{4}$ 합성에 관한 연구 (A study on synthesis of $Li_{x}Mn_{2}O_{4}$ for asecondary battery with various $MnO_{2}$ structure)

  • 김익진;이영훈;이종호;이재한;장동환;이경희;고영신
    • 한국결정성장학회지
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    • 제6권4호
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    • pp.600-608
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    • 1996
  • 리튬 이온이 intercalation되어 스핀넬 구조를 이루고 있는 $Li_{x}Mn_{2}O_{4}(0.2{\leq}x{\leq}2.0)$의 구조적 특성을 X-선 회절분석과 Li/1M $LiClO_{4}$-propylene carbonate solution/$Li_{x}Mn_{2}O_{4}$ 전지에서 이들의 구조적 특징에 의한 전기화학적 특성을 연구하였다. $Li_{x}Mn_{2}O_{4}$의 전기화학적 특성에 대한 조성과 반응온도의 영향은 상전이 현상과, 결정 상수 측정과 열분석에 의하여 연구하였다. 산처리 후 $Li_{x}Mn_{2}O_{4}$는 거의 순수한 ${\lambda}-MnO_{2}$구조로 상전이 되었으며 이때 격자상수 $a_{c}$가 8.255에서 $8.031\;{\AA}$으로 수축되었다. $Li_{x}Mn_{2}O_{4}$의 조성 범위가 $0.2{\leq}x{\leq}0.6$일 때 격자상수 $8.255\;{\AA}$의 단일상을 나타내며 3.9~3.7 V의 전위 평탄 영역을 나타낸다.

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리튬 이온 이차전지용 $LiCr_xMn_{1-x}O_2$ 정극활물질의 전기 화학적 특성 (Electrochemical properties of $LiCr_xMn_{1-x}O_2$ cathode materials for lithium ion battery)

  • 김은미;전연수;백형렬;구할본;손명모
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2005년도 하계학술대회 논문집 Vol.6
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    • pp.418-419
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    • 2005
  • $\o-LiMnO_2$ is known to have poor cycle performance causing the irreversible phase transformation on cycling. In this paper, the effect of chemical substitution on improving cycle performance of $o-LiMnO_2$ was studied at the compositions of $LiCr_xMn_{1-x}O_2$(x=0, 0.1, 0.2, 0.4). XRD is showed that structure of $LiCr_xMn_{1-x}O_2$ transformed from orthorhombic to spinel according to the increase of substitute degree. For lithium ion battery applications, $LiCr_xMn_{1-x}O_2$/Li cell were characterized electrochemically by charge/discharge cycling.

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리튬 이온 이차전지 Cathode용 Li(Mn$_{1-}$$\delta$Nb$\delta$)$_2$O$_4$의 전기적 특성 (Electrical Characteristics of Li(Mn$_{1-}$$\delta$Nb$\delta$)$_2$O$_4$ Cathode Materials for Li-Ion Secondary Batteries)

  • 오용주;유광수
    • 한국세라믹학회지
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    • 제35권9호
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    • pp.995-1001
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    • 1998
  • As a basic study for cathode materials of {{{{ { {LiMn }_{2 }O }_{4 } }}-based lithium-ion secondary batteries Li({{{{ { { { {Mn }_{1-$\delta$ }Nb }_{$\delta$} )}_{2 }O }_{4 } }} ($\delta$=0.05, 0.1, 0.2) materials which Nb is substituted for Mn were synthesized by the solid state reaction at 80$0^{\circ}C$ and 110$0^{\circ}C$ respectively. The second phase {{{{ { LiNbO}_{3 } }} appeared above $\delta$=0.1 As the result of im-pedance analysis as the amount of substituted Nb increased the resistivity of grain boundary increased greatly. Compared to undoped-{{{{ { {LiMn }_{2 }O }_{4 } }} the electrical conductivity of Li({{{{ { { { {Mn }_{1-$\delta$ }Nb }_{$\delta$} )}_{2 }O }_{4 } }} decreased slightly but is charging capacity and potential plateau increased.

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