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A Study on Electrochemical Characteristics of $LiCoO_2/LiNi_{1/3}Mn_{1/3}Co_{1/3}O_2$ Mixed Cathode Materials ($LiCoO_2/LiNi_{1/3}Mn_{1/3}Co_{1/3}O_2$ 복합 정극의 특성 연구)

  • Kim, Hyun-Soo;Lee, Youn-Ho;Kim, Sung-Il;Moon, Seong-In;Kim, Woo-Seong
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2005.07a
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    • pp.318-319
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    • 2005
  • 본 연구에서는 $LiCoO_2/LiNi_{1/3}Mn_{1/3}Co_{1/3}O_2$ 혼합 정극활물질로 사용하여 전극을 제작하고 성능을 평가하였다. $LiCoO_2/LiNi_{1/3}Mn_{1/3}Co_{1/3}O_2$$LiCoO_2$의 혼합비에 따른 충방전 거동 및 임피던스 변화를 측정하였다. 각 조성에서의 초기용량은 160 ~ 170 mAh/g 정도였으며, $LiNi_{1/3}Mn_{1/3}Co_{1/3}O_2$의 첨가 비율이 증가함에 따라 비용량이 증가하였으나 고율에서의 방전용량은 낮았다.

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Hydrothermal synthesis of $(Li,Al)MnO_2(OH)_2$:Co compound (수열법에 의한 $(Li,Al)MnO_{2}(OH)_{2}$:Co 화합물의 합성)

  • 최종건;황완인;김판채
    • Journal of the Korean Crystal Growth and Crystal Technology
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    • v.11 no.4
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    • pp.154-159
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    • 2001
  • (Li,Al)$MnO_2(OH)_2$:Co compound was synthesized by hydrothermal method. $MnO_2$, LiOH.$H_2$O, $Co_3O_4$ and $Al(OH)_3$ were used as starting materials and the optimum conditions for synthesis of monolithic (Li,Al)$MnO_2(OH)_2$:Co compound were as follows : reaction temperature; $200^{\circ}C$, reaction time; 3 days, hydrothermal solvent; 3M-KOH solution, reaction apparatus; seesaw type, atomic ratio of Li:Al:Mn;Co = 1:2.1:2.5~2:0.5~1. Monolithic(Li,Al)$MnO_2(HO)_2$:Co compound synthesized in this work had a god crystallinity and excellent color forming effect as a blue pigment compatible with natural mineral. The particles of the synthesized (Li,Al)$MnO_2(OH)_2$:Co compound have hexagonal plate shape with the size of 0.5~1 $\mu\textrm{m}$.

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Compositional Change of MgO Barrier and Interface in CoFeB/MgO/CoFeB Tunnel Junction after Annealing

  • Bae, J.Y.;Lim, W.C.;Kim, H.J.;Kim, D.J.;Kim, K.W.;Kim, T.W.;Lee, T.D.
    • Journal of Magnetics
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    • v.11 no.1
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    • pp.25-29
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    • 2006
  • Recent experiments have demonstrated high TMR ratios in MTJs with the MgO barrier [1,2]. The CoFeB/MgO/CoFeB junctions showed better properties than the CoFe/MgO/CoFe junctions because the MgO layer had a good crystalline structure with (001) texture and smooth and sharp interface between CoFeB/MgO [3]. The amorphous CoFeB with 20 at%B starts the crystallization at $340^{\circ}C$ [4] and this crystallization of the CoFeB helps obtaining the high TMR ratio. In this work, the compositional changes in the MgO barrier and at the interface of CoFeB/MgO/CoFeB after the CoFeB crystallization were studied in annealed MTJs. XPS depth profiles were utilized. TEM analyses showed that the MgO barrier had (100) texture on CoFeB in the junctions. B in the bottom CoFeB layer diffused into the MgO barrier and B-oxide was formed at the interface of CoFeB/MgO/CoFeB after the CoFeB crystallization.

Effect of Pr6O11/CoO Ratio on Electrical Characteristics of ZPCD-Based varistor Ceramics (ZPCD계 바리스터 세라믹스의 전기적 특성에 Pr6O11/CoO 비의 영향)

  • 남춘구;김향숙
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.15 no.10
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    • pp.876-882
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    • 2002
  • The microstructure and electrical characteristics of ZPCD (ZnO-$Pr_{6}O_{11}$-CoO-$Dy_2O_3$) -based varistor ceramics were investigated with various $Pr_{6}O_{11}$/CoO ratios and sintering temperatures. The density of varistor ceramics with $Pr_{6}O_{11}$=1.0 was almost constant with sintering temperature, whereas it was increased noticeably in $Pr_{6}O_{11}$=0.5. Increasing $Pr_{6}O_{11}$ content enhanced the densification for any CoO content and the density was greatly affected not by CoO content but by $Pr_{6}O_{11}$ content. The varistor ceramics with $Pr_{6}O_{11}$/CoO=0.5/l.0 exhibited a higher nonlinearity than any other composition ratios. In particular, the varistor ceramics sintered at $1350^{\circ}C$ exhibited the best electrical properties, with nonlinear exponent of 37.8, leakage current of 7.6 ${\mu}$A, and tan $\delta$ of 0.059.

Li2CO3 분말을 이용한 고밀도 Li1+xCoO2 Target 제조

  • Eun, Yeong-Jin;Yun, Su-Jin;Jo, Seong-Hui;Park, Hyeong-Seok;Lee, Won-Jun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.183-183
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    • 2011
  • 리튬 이온 배터리의 cathode 및 electrolyte 재료로 사용되는 LiCoO2을 sputtering이나 pulsed laser deposition을 이용하여 박막으로 증착하기 위해서는 target이 필요하다. Target은 원료 분말을 가압 성형한 후 고온에서 소결하여 제조된다. LiCoO2 target 제조과정에서 고밀도를 얻기 힘들고 Li 성분의 증발이 일어난다. 또한 Li2O 분말은 흡습성이 매우 크다. 본 연구에서는 시간과 온도를 조절하여 최적화된 소결 과정을 통해 target의 밀도가 이론밀도와 근사한 값을 갖도록 하고, LiCoO2 또는 Co3O4 분말에 각각 흡습성이 낮은 Li2CO3 분말을 첨가하여 Li 성분을 조절하였다. Li과 Co의 조성비가 1:1-2:1인 고밀도의 LiCoO2 target을 제조하여 박막 증착 후 Li과 Co의 조성비가 1:1이 되도록 하였다.

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A Study on Decomposition in Synthesis of $BaTiO_3$ by Soild-solid Reaction ($BaTiO_3$고상반응 합성시 분해 반응의 고찰)

  • Kim, Jong-Ock;Lim, Dae-Young
    • The Journal of Natural Sciences
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    • v.4
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    • pp.85-93
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    • 1991
  • In solid reaction of the eqimolecular mixture of $BaCO_3$ and $TiO_2$, $CO_2$ generates by the following reaction ; $BaCO_3 + TiO_2\longrightarrow$ $BaTiO_3 + CO_2$ The solid reaction is studied as the kinetics of decomposition reaction with DTA-TG. The results are as follows. 1. $BaCO_3$ with is coexisted with $TiO_2$ decompose at lower temperature than pure $BaCO_3$. The reason is decreasing free eneragy of products. 2. Carter's equation is more important than Jander's equation in solid reaction of $BaCO_3$ decomposi-tion. The activation energy obtained by Carte r's equation is 42.8 Kcal/mol.

Cathodic Properties of $LiCoO_2$ Synthesized by a Sol-Gel Method for Lithium Ion Battery

  • 조봉준;정의덕;심윤보
    • Bulletin of the Korean Chemical Society
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    • v.19 no.1
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    • pp.39-44
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    • 1998
  • $LiCoO_2$ powder was synthesized in an aqueous solution by a sol-gel method and used as a cathode active material for a lithium ion rechargeable battery. The layered $LiCoO_2$ powders were prepared by igniting in air for 12 hrs at 600 ℃ $(600-LiCoO_2)$ and 850 ℃ $(850-LiCoO_2)$. The structure of the $LiCoO_2$ powder was assigned to the space group R bar 3 m (lattice parameters a=2.814 Å and c=14.04Å). The SEM pictures of $600-LiCoO_2$ revealed homogeneous and fine particles of about 1 μm in diameter. Cyclic voltammograms (CVs) of $600-LiCoO_2$ electrode displayed a set of redox peaks at 3.80/4.05 V due to the intercalation/deintercalation of the lithium ions into/out of the $LiCoO_2$ structure. CVs for the $850-LiCoO_2$ electrode had a major set of redox peaks at 3.88/4.13 V, and two small set of redox peaks at 4.18/4.42 V and 4.05/4.25 V due to phase transitions. The initial charge-discharge capacity was 156-132 mAh/g for the $600-LiCoO_2$ electrode and 158-131 mAh/g for the $850-LiCoO_2$ electrode at the current density of 0.2 mA/cm2. The cycleability of the cell consisting of the $600-LiCoO_2$ electrode was better than that of the $850-LiCoO_2$. The diffusion coefficient of the $Li^+$ ion in the $600-LiCoO_2$ electrode was calculated as $4.6{\times}10^{-8}\; cm^2/sec$.

Resistance Modulation of $\textrm{LaCoO}_{3}$ by Ferroelectric Field Effect in $\textrm{LaCoO}_{3}/\textrm{Pb(Zr,Ti)O}_{3}/\textrm{(La,Sr)CoO}_{3}$ Heterostructures ($\textrm{LaCoO}_{3}/\textrm{Pb(Zr,Ti)O}_{3}/\textrm{(La,Sr)CoO}_{3}$다층구조에서의 강유전체 전계효과에 의한 LaCoO$_{3}$의 전항변조)

  • Kim, Seon-Ung;Lee, Jae-Chan
    • Korean Journal of Materials Research
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    • v.7 no.12
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    • pp.1058-1062
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    • 1997
  • 강유전체 전계효과를 관찰하기 위해 LaCoO$_{3}$/Pb(Zr, Ti)O$_{3}$(La, Sr)CoO$_{3}$ 다층구조를 LcOo$_{3}$가 기판 위에 pulsed laser deposition(PLD)법으로 에피택셜하게 성장시켰다. 이러한 다층구조에서는 전도성 채널층으로 Si대신 반도성 LaCoO$_{3}$가 사용 되었다. LaCoO$_{3}$(LCO)의 비저항은 산소 분위기에 의하여 변화되었는데 특히 증착시 산소 분위기에 의존함을 보였다. LCO의 비저항은 0.1-100Ωcm범위에서 변화되었다. LCO층에 유도되는 강유전체 전계효과는 Pb(Zr, Ti)O$_{3}$(PZT)의 분극 상태에 따른 LCO의 저항 변화를 측정함으로써 관찰되었는데 1020$\AA$ 두께를 가진 LCO층에서는 4%의 저항 변화를 얻었으며 680$\AA$의 LCO에서는 9%의 증가된 저항 변화를 얻었다. DC 바이어스(-5V)를 가한 후에는 저항 변화가 45%까지 증가하였다. 이러한 결과는 적당한 비저항을 갖는 LCO를 사용한 LCO/PZT/LSCO다층구조가 강유전체 전계효과 트랜지스터로 사용될 수 있다는 가능성을 제시하고 있다.

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Analyses on the Physical and Electrochemical Properties of Al2O3 Coated LiCoO2 (리튬이차전지용 양극 활물질(LiCoC2)의 표면처리의 특성 분석 및 전기화학적 특성 고찰)

  • Chang, Youn-Han;Choi, Sei-Young
    • Journal of the Korean Electrochemical Society
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    • v.10 no.3
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    • pp.184-189
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    • 2007
  • The importance of secondary battery industry is getting excited according to the development of battery industry as a high efficiency energy supplier of electronic machine of mobile information such as mobile phone, lap-top computer, PDA. It is rasing the interest about security of safety and high efficiency of cathode material for main part of secondary lithium battery. The cathode material which has been used like $LiCoO_2,\;LiMn_2O_4,\;LiNi_xCo_yMn_zO_2,\;LiNi_xCo_yM_zO_2$ (M=Al, Zr, Mg etc.,) the most typical material is $LiCoO_2$. But it is studying the development of substitute such as efficiency amelioration of $LiCoO_2$, thetiary element, olivine element because of the capacity of $LiCoO_2$, the matter of security; especially the betterment of efficiency, security research of safety has been actively processed in domestic and overseas about surface coating treatment of active cathode which is using oxide ($M_xO_3$). This study analyses side effect of battery according to increase of surface treatment, formation of precipitation for reagent condensation, non-reagent residue of oxide ($M_xO_3$) which is remains during the surface treatment of $LiCoO_2$; conducts study of new process, the consideration of the electrochemical property to improve oxide solution of mixing rate, mixture of surface treatment, dryness, calcinations conditionetc.