• 제목/요약/키워드: $LiCoO_{2}$

검색결과 700건 처리시간 0.225초

Structural Behavior of Mixed $LiMn_2O_4-LiNi_{1/3}Co_{1/3}Mn_{1/3}O_2$ Cathode in Li-ion Cells during Electrochemical Cycling

  • 윤원섭;이상우
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2011년도 춘계학술발표대회
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    • pp.5-5
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    • 2011
  • The research and development of hybrid electric vehicle (HEV), plug-in hybrid electric vehicle (PHEV) and electric vehicle (EV) are intensified due to the energy crisis and environmental concerns. In order to meet the challenging requirements of powering HEV, PHEV and EV, the current lithium battery technology needs to be significantly improved in terms of the cost, safety, power and energy density, as well as the calendar and cycle life. One new technology being developed is the utilization of composite cathode by mixing two different types of insertion compounds [e.g., spinel $LiMn_2O_4$ and layered $LiMO_2$ (M=Ni, Co, and Mn)]. Recently, some studies on mixing two different types of cathode materials to make a composite cathode have been reported, which were aimed at reducing cost and improving self-discharge. Numata et al. reported that when stored in a sealed can together with electrolyte at $80^{\circ}C$ for 10 days, the concentrations of both HF and $Mn^{2+}$ were lower in the can containing $LiMn_2O_4$ blended with $LiNi_{0.8}Co_{0.2}O_2$ than that containing $LiMn_2O_4$ only. That reports clearly showed that this blending technique can prevent the decline in capacity caused by cycling or storage at elevated temperatures. However, not much work has been reported on the charge-discharge characteristics and related structural phase transitions for these composite cathodes. In this presentation, we will report our in situ x-ray diffraction studies on this mixed composite cathode material during charge-discharge cycling. The mixed cathodes were incorporated into in situ XRD cells with a Li foil anode, a Celgard separator, and a 1M $LiPF_6$ electrolyte in a 1 : 1 EC : DMC solvent (LP 30 from EM Industries, Inc.). For in situ XRD cell, Mylar windows were used as has been described in detail elsewhere. All of these in situ XRD spectra were collected on beam line X18A at National Synchrotron Light Source (NSLS) at Brookhaven National Laboratory using two different detectors. One is a conventional scintillation detector with data collection at 0.02 degree in two theta angle for each step. The other is a wide angle position sensitive detector (PSD). The wavelengths used were 1.1950 ${\AA}$ for the scintillation detector and 0.9999 A for the PSD. The newly installed PSD at beam line X18A of NSLS can collect XRD patterns as short as a few minutes covering $90^{\circ}$ of two theta angles simultaneously with good signal to noise ratio. It significantly reduced the data collection time for each scan, giving us a great advantage in studying the phase transition in real time. The two theta angles of all the XRD spectra presented in this paper have been recalculated and converted to corresponding angles for ${\lambda}=1.54\;{\AA}$, which is the wavelength of conventional x-ray tube source with Cu-$k{\alpha}$ radiation, for easy comparison with data in other literatures. The structural changes of the composite cathode made by mixing spinel $LiMn_2O_4$ and layered $Li-Ni_{1/3}Co_{1/3}Mn_{1/3}O_2$ in 1 : 1 wt% in both Li-half and Li-ion cells during charge/discharge are studied by in situ XRD. During the first charge up to ~5.2 V vs. $Li/Li^+$, the in situ XRD spectra for the composite cathode in the Li-half cell track the structural changes of each component. At the early stage of charge, the lithium extraction takes place in the $LiNi_{1/3}Co_{1/3}Mn_{1/3}O_2$ component only. When the cell voltage reaches at ~4.0 V vs. $Li/Li^+$, lithium extraction from the spinel $LiMn_2O_4$ component starts and becomes the major contributor for the cell capacity due to the higher rate capability of $LiMn_2O_4$. When the voltage passed 4.3 V, the major structural changes are from the $LiNi_{1/3}Co_{1/3}Mn_{1/3}O_2$ component, while the $LiMn_2O_4$ component is almost unchanged. In the Li-ion cell using a MCMB anode and a composite cathode cycled between 2.5 V and 4.2 V, the structural changes are dominated by the spinel $LiMn_2O_4$ component, with much less changes in the layered $LiNi_{1/3}Co_{1/3}Mn_{1/3}O_2$ component, comparing with the Li-half cell results. These results give us valuable information about the structural changes relating to the contributions of each individual component to the cell capacity at certain charge/discharge state, which are helpful in designing and optimizing the composite cathode using spinel- and layered-type materials for Li-ion battery research. More detailed discussion will be presented at the meeting.

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폐전기차 셀분말의 열처리 조건에 따른 선택적 리튬침출 연구 (Study on Selective Lithium Leaching Effect on Roasting Conditions of the Waste Electric Vehicle Cell Powder)

  • 정연재;손성호;박성철;김용환;유봉영;이만승
    • 자원리싸이클링
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    • 제28권6호
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    • pp.79-86
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    • 2019
  • 최근, 전기차 증가에 따른 리튬 전지의 사용량 증가로 리튬 가격 증가 및 폐리튬전지 발생량이 증가하고 있다. 이러한 이유로 폐리튬전지 내 리튬 회수에 대한 연구가 진행되고있다. 본 연구에서는 폐전기차 셀분말의 열처리 조건에 따른 선택적 리튬 침출에 관한 연구를 진행하였다. 셀 분말(LiNixCoyMnzO2, LiCoO2)로부터 선택적 리튬 침출을 위해서는 환원을 통한 상변화 및 분리가 필요하다. 폐전기차 셀분말 내 탄소는 고온에서 산소와 반응하여 환원제 역할을 한다. 적정 온도를 알고자 대기/질소 분위기에서 TG-DSC 분석 및 550 ~ 850 ℃ 열처리 후, XRD 분석을 하였다. 열처리 된 분말은 ICP 분석을 위해 D.I water에서 1:10 비율로 침출 후 분석하였다. XRD 분석결과, 700 ℃에서 Li2CO3 피크가 확인되었다. 850 ℃ 열처리 시 Li2O의 피크가 확인되었는데, 이는 Li2CO3가 723 ℃ 이상의 온도에서 Li2O와 CO2로 분해되었기 때문이다. 또한 Li2O와 Al2O3와 반응으로 LiAlO2가 확인되었다. 850 ℃에서 열처리 시 Li 침출율이 낮아졌는데 이는 LiAlO2가 D.I water에서 침출하지 않기 때문으로 판단된다. 리튬 침출율의 경우 열처리의 조건에 따라 달라지며, 질소 분위기 중 700 ℃로 열처리 시 약 45 %의 리튬침출이 확인되었다. 침출 용액을 고-액분리 후증발농축하여 XRD 분석을 실시한 결과, Li2CO3의 피크를 확인하였다.

KCl을 사용한 LiNi0.6Co0.2Mn0.2O2계 양극활물질의 잔류리튬 저감 및 전기화학특성 개선 (Improved Electrochemical Performance and Minimized Residual Li on LiNi0.6Co0.2Mn0.2O2 Active Material Using KCl)

  • 유기원;신미라;신태명;홍태환;김홍경
    • 전기화학회지
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    • 제20권1호
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    • pp.7-12
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    • 2017
  • $LiNi_{0.6}Co_{0.2}Mn_{0.2}O_2$의 전구체 물질에 KCl을 첨가함으로써, 리튬카보네이트($Li_2CO_3$)와 리튬수산화물(LiOH)의 양을 감소시켰을 때 전기화학특성에 어떤 영향을 주는지에 대한 연구를 진행하였다. KCl을 1 질량 %로 전구체에 첨가하여 $800^{\circ}C$에서 열처리 한 샘플의 경우, 첨가하지 않은 재료와 대비하여 잔류하는 리튬카보네이트($Li_2CO_3$)는 8,464 ppm에서 1,639 ppm으로 리튬수산화물(LiOH)은 8,088 ppm에서 6,287 ppm으로 크게 감소하였다. XRD 분석결과 KCl의 첨가는 모상구조에 영향을 주지 않았으며, 층상구조 결정성이 약간 개선되는 효과가 확인되었다. 또한, 전하전달 저항($R_{ct}$)은 $255{\Omega}$에서 KCl 첨가 시 $99{\Omega}$으로 감소하였다. 초기 방전 용량은 171.04 mAh/g에서 182.73 mAh/g으로 증가하였으며 싸이클 특성도 개선되었다. 특히, AFM 분석을 통하여 표면적이 50% 감소하는 것을 확인하였는데, 이는 잔류리튬의 산화반응으로 인한 열 때문일 것으로 해석되고, 전해질과의 부반응을 억제할 수 있는 장점이 있었다. 잔류리튬 제거를 위해 KCl을 첨가한 연구는, 아직까지 발표된 바가 없으며, $LiNi_{0.6}Co_{0.2}Mn_{0.2}O_2$계 양극활물질의 전기화학특성을 개선하는데 매우 효과적임을 본 연구를 통해 확인할 수 있었다.

리튬이온전지용 $LiCoO_2$정극의 도전재료에 따른 초기 충방전 특성 (Initial Charge/Discharge of $LiCoO_2$ Composite Cathode with Various Content of Conductive Material for the Lithium ion Battery)

  • 도칠훈;문성인;윤문수;박천준;염덕형;윤성규
    • 전기화학회지
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    • 제2권3호
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    • pp.123-129
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    • 1999
  • 리튬이온전지용 $LiCoO_2$ 전극의 super s black 도전재료의 함량에 따른 초기 충방전 특성을 1 mol/l $LiPF_6/EC+DEC(1:3\;by\;w/w)$의 전해액에서 리튬기준전극에 대하여 4.3 V에서 2.0 V의 전위 구간에 대하여 C/4 및 C/2율로 충방전하여 측정하였다. 최초의 충전과정에서 high impedance충전 특성을 보였으며, super s black도전재료를 $3\%w/w$ 사용한 경우, $0.5 mA/cm^2$ 전류밀도의 충전에서 high impedance의 해소에 따라 $3.82\;{\Omega}\;{\cdot}\;g-LiCoCo_2$의 저항 감소를 나타내었으며, $0.728\;{\Omega}{\cdot}g-LiCoCo_2$의 전극저항과 비교하여 약 7배 높은 값을 나타내었다. 제2차 충전에의 high impedance해소는 약 $63\;{\Omega}{\cdot}g-LiCoCo_2$으로서 전극저항의 $12\%$ 정도이며, 제1차 충전의 high impedance해소에 비하여 $1.7\%$의 수준으로 감소하였다. 제1차 충전 및 방전 비용량은 C/4방전율에서 각각 160-161 및 $153\~155mAh/g-LiCoO_2$으로, 쿨롱효율은 $95.4\~96.4\%$였으며, 비가역 비용량은 약 6 mAh/g-$LiCoO_2$였다. 충전종료 지점에서 측정한 비저항은 도전재료 함량 $2\~7\%w/w$범위에서 낮은 값을 나타내어 비가역 비용량 특성의 변화와 일치하였다. 도전재료의 함량 증가에 따라 용량밀도가 감소하였으며, C/4율 방전에서 super s black함량 $2\%w/w$$2.9\%w/w$의 도전재료를 사용한 전극의 용량밀도는 각각 447mAh/ml 및 431 mAh/ml였다

Comparative Analysis of SOC Estimation using EECM and NST in Rechargeable LiCoO2/LiFePO4/LiNiMnCoO2 Cells

  • Lee, Hyun-jun;Park, Joung-hu;Kim, Jonghoon
    • Journal of Electrical Engineering and Technology
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    • 제11권6호
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    • pp.1664-1673
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    • 2016
  • Lithium rechargeable cells are used in many industrial applications, because they have high energy density and high power density. For an effective use of these lithium cells, it is essential to build a reliable battery management system (BMS). Therefore, the state of charge (SOC) estimation is one of the most important techniques used in the BMS. An appropriate modeling of the battery characteristics and an accurate algorithm to correct the modeling errors in accordance with the simplified model are required for practical SOC estimation. In order to implement these issues, this approach presents the comparative analysis of the SOC estimation performance using equivalent electrical circuit modeling (EECM) and noise suppression technique (NST) in three representative $LiCoO_2/LiFePO_4/LiNiMnCoO_2$ cells extensively applied in electric vehicles (EVs), hybrid electric vehicles (HEVs) and energy storage system (ESS) applications. Depending on the difference between some EECMs according to the number of RC-ladders and NST, the SOC estimation performances based on the extended Kalman filter (EKF) algorithm are compared. Additionally, in order to increase the accuracy of the EECM of the $LiFePO_4$ cell, a minor loop trajectory for proper OCV parameterization is applied to the SOC estimation for the comparison of the performances among the compared to SOC estimation performance.

Polarity-tuned Gel Polymer Electrolyte Coating of High-voltage LiCoO2 Cathode Materials

  • Park, Jang-Hoon;Cho, Ju-Hyun;Kim, Jong-Su;Shim, Eun-Gi;Lee, Yun-Sung;Lee, Sang-Young
    • 전기화학회지
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    • 제14권2호
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    • pp.117-124
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    • 2011
  • We demonstrate a new surface modification of high-voltage lithium cobalt oxide ($LiCoO_2$) cathode active materials for lithium-ion batteries. This approach is based on exploitation of a polarity-tuned gel polymer electrolyte (GPE) coating. Herein, two contrast polymers having different polarity are chosen: polyimide (PI) synthesized from thermally curing 4-component (pyromellitic dianhydride/biphenyl dianhydride/phenylenediamine/oxydianiline) polyamic acid (as a polar GPE) and ethylene-vinyl acetate copolymer (EVA) containing 12 wt% vinyl acetate repeating unit (as a less polar GPE). The strong affinity of polyamic acid for $LiCoO_2$ allows the resulting PI coating layer to present a highly-continuous surface film of nanometer thickness. On the other hand, the less polar EVA coating layer is poorly deposited onto the $LiCoO_2$, resulting in a locally agglomerated morphology with relatively high thickness. Based on the characterization of GPE coating layers, their structural difference on the electrochemical performance and thermal stability of high-voltage (herein, 4.4 V) $LiCoO_2$ is thoroughly investigated. In comparison to the EVA coating layer, the PI coating layer is effective in preventing the direct exposure of $LiCoO_2$ to liquid electrolyte, which thus plays a viable role in improving the high-voltage cell performance and mitigating the interfacial exothermic reaction between the charged $LiCoO_2$ and liquid electrolytes.

The Effect of Coating Thickness on the Electrochemical Properties of a Li-La-Ti-O-coated Li[Ni0.3Co0.4Mn0.3]O2 Cathode

  • Lee, Hye-Jin;Park, Yong-Joon
    • Bulletin of the Korean Chemical Society
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    • 제31권11호
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    • pp.3233-3237
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    • 2010
  • A $Li[Ni_{0.3}Co_{0.4}Mn_{0.3}]O_2$ cathode was modified by coating with Li-La-Ti-O, and the effect of the coating thickness on their electrochemical properties was studied. The thickness of the coating on the surface of $Li[Ni_{0.3}Co_{0.4}Mn_{0.3}]O_2$ was increased by increasing the wt % of the coating material. The rate capability of the Li-La-Ti-O-coated electrode was superior to that of the pristine sample. 1- and 2-wt %-coated samples showed considerable improvement in capacity retention at high C rates. However, the rate capability of a 5-wt %-coated sample decreased. All the coated samples showed a high discharge capacity and slightly improved cyclic performance under a high cut-off voltage (4.8 V) condition. Results of a storage test confirmed that the Li-La-Ti-O coating layer was effective in suppressing the dissolution of the transition metals as it offered protection from the attack of the acidic electrolyte. In particular, the 2- and 5-wt %-coated samples showed a better protection effect than the 1-wt %-coated sample.

Co3(PO4)2로 표면코팅한 Li[Co0.1Ni0.15Li0.2Mn0.55]O2의 리튬 2차전지용 양극재 특성 (Cathode Characteristics of Co3(PO4)2-Coated [Co0.1Ni0.15Li0.2Mn0.55]O2 for Lithium Rechargeable Batteries)

  • 이상효;김광만;구본급
    • 한국세라믹학회지
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    • 제45권2호
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    • pp.112-118
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    • 2008
  • To prepare the high-capacity cathode material with improved electrochemical performances, nanoparticles of $C0_3(PO_4)_2$ were coated on the powder surface of $Li[Co_{0.1}Ni_{0.15}Li_{0.2}Mn_{0.55}]O_2$, which was already synthesized by simple combustion method. The coated powders after the heat treatment at >$700^{\circ}C$ surely showed well-structured crystalline property with nanoscale surface coating layer, which was consisted of $LiCOPO_4$ phase formed from the reaction bwtween $CO_3(PO_4)_2$ and lithium impurities. In addition, cycle performance was particularly improved by the $CO_3(PO_4)_2$-coating for the cathode material for lithium rechargeable batteries.