• 제목/요약/키워드: $LiNiO_2$

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리륨이차전지용 $LiNi_{1/3}Mn_{1/3}Co_{1/3}O_2$ 양극활물질의 표면개질에 따른 전지특성 (Cell Performances of Surface-Treated $LiNi_{1/3}Mn_{1/3}Co_{1/3}O_2$ Material for Li Secondary Battery)

  • 김현수;공명철;김기택;문성인
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2007년도 하계학술대회 논문집 Vol.8
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    • pp.294-295
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    • 2007
  • $LiNi_{1/3}Mn_{1/3}Co_{1/3}O_2$ material was surface modified with Zr-phosphate. Scanning electron microscope, energy dispersive spectroscopy and electrochemical studies indicate that surface modification improve the rate capability. Electrochemical studies were performed by assembling 2032 coin cells with lithium metal as an anode.

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기계적 혼합과 고상법에 의한 $LiNiO^2$의 합성과 전기화학적 특성 연구 (Study on the Synthesis by Mechanical Grinding and Solid-State Reaction Method and the Electochemical Properties of $LiNiO^2$)

  • 윤순도;이재천;박혜령;송명엽
    • 한국전기화학회:학술대회논문집
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    • 한국전기화학회 2004년도 수소연료전지공동심포지움 2004논문집
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    • pp.281-286
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    • 2004
  • [ $LiOH{\cdot}H^2O$ ]와 $Ni(OH)^2$를 기계적으로 혼합하여 고상법으로 $LiNiO^2$를 합성하고, $LiNiO^2$의 전기화학적 특성을 조사하였다. 기계적 혼합을 위해 SPEC mill을 사용하였으며, 1시간 동안 milling하여 공기 중 $450^{\circ}C$에서 5시간 동안 전처리한 후 $750^{\circ}C$에서 30시간 동안 산소를 흘려주면서 하소한 시료가 가장 좋은 전기화학적 특성을 나타내었다. $2.7\~4.15V$에서 0.1C로 충${\cdot}$방전시 초기방전용량은 그다지 높지 않았으나(145.8mAh/g) 좋은 싸이클 성능을 나타내었으며, $2.7\~4.2V$에서 0.1C로 충${\cdot}$방전시 높은 초기방전용량(164.7mAh/g)을 나타내었으나 싸비클 성능은 그리 좋지 않았는데, 이는 충${\cdot}$방전시 육방구조$(H^2)$에서 육방구조$(H^3)$로의 상전이가 영향을 주는 것으로 사료된다. 초기방전용량과 방전용량은 Cation mixing을 나타내는 $I^{003}/I^{104}$값보다 hexagonal ordering을 나타내는 R-factor에 더 의존하는 것으로 사료된다.

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Structures and Electrochemical Properties of LiNi0.5-xCo2x}Mn0.5-xO2 as Cathode Materials for Lithium-ion Batteries

  • Choi, Hyun-Chul;Kim, Ho-Jin;Jeong, Yeon-Uk;Jeong, Soo-Hwan;Cheong, In-Woo;Jung, Uoo-Chang
    • Bulletin of the Korean Chemical Society
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    • 제30권11호
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    • pp.2603-2607
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    • 2009
  • $LiNi_{0.5-x}Co_{2x}Mn_{0.5-x}O_{2}$ (x = 0, 0.1, 1/6, 1.2, 0.3) were synthesized by the solid-state reaction method. The crystal structure was analyzed by X-ray powder diffraction and Rietveld refinement. $LiNi_{0.5-x}Co_{2x}Mn_{0.5-x}O_{2}$ samples give single phases of hexagonal layered structures with a space group of R-3m for x = 0.1, 1/6, 0.2, and 0.3. The lattice constants of a and c-axis were decreased with the increase in Co contents in samples. The thickness of MO2 slab was decreased and inter-slab distance was increased with the increase in Co contents in $LiNi_{0.5-x}Co_{2x}Mn_{0.5-x}O_{2}$. According to XPS analysis, the valence states of Mn, Co, and Ni in the sample are mainly +4, +3, and +3, respectively. The discharge capacity of 202 mAh/g at 0.1C-rate in the potential range of 4.7 - 3.0 V was obtained in $LiNi_{0.3}Co_{0.4}Mn_{0.3}O_2$ sample, and $LiNi_{0.4}Co_{0.2}Mn_{0.4}O_2$ gives excellent cycle performance in the same potential range.

리튬이온전지 양극활물질 Ni-rich NCM의 합성과 전기화학적 특성 (Synthesis and Electrochemical Performance of Ni-rich NCM Cathode Materials for Lithium-Ion Batteries)

  • 김수연;최승현;이은주;김점수
    • 전기화학회지
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    • 제20권4호
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    • pp.67-74
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    • 2017
  • 층상구조의 Ni-rich NCM계 양극활물질 $Li[Ni_xCo_{(1-x)/2}Mn_{(1-x)/2}]O_2$ ($x{\geq}0.6$)은 $LiCoO_2$ 대비 높은 에너지밀도와 가격 경쟁력의 장점을 가진다. Ni 함량에 비례하여 가역 방전용량이 증가하는 장점이 있는 반면, 합성 중에 발생하는 양이온 혼합으로 인해 안정적인 전기화학성능을 구현하기 어려운 문제가 있다. 본 연구에서는 합성 분위기, 리튬 원료물질, 합성 시간, 합성 온도, Li/M (M=transition metal) 비율 등의 다양한 합성조건을 변수로 하여 Ni 함량 증가에 따라 최적의 층상구조 Ni-rich NCM을 각각 합성하고 이에 대한 전기화학성능을 보고하였다. $Li[Ni_{0.6}Co_{0.2}Mn_{0.2}]O_2$ (NCM6)을 기준으로 Ni 함량이 증가한 $Li[Ni_{0.7}Co_{0.15}Mn_{0.15}]O_2$ (NCM7)와 $Li[Ni_{0.8}Co_{0.1}Mn_{0.1}]O_2$ (NCM8)의 합성시 전이금속 중 Ni의 비율이 증가함에 따라 양이온 혼합이 증가하는 것이 관찰되었고, 이는 전기화학 성능에 부정적인 영향을 끼치는 것으로 확인되었다. Ni 비율별 NCM에 대한 연구결과 비율 내확인한 최적의 조건에서 NCM6은 $180mAh{\cdot}g^{-1}$, 96.2% (50회), NCM7은 $187mAh{\cdot}g^{-1}$, 94.7% (50회), NCM8은 $201mAh{\cdot}g^{-1}$, 92.7% (50회)의 초기 방전용량 및 수명평가 후 용량유지율 값을 각각 구현하였다.

그래핀 2wt%를 첨가한 Li1.6Ni0.35Mn0.65O2 Half-Cell의 물질 전 과정 평가 (Material Life Cycle Assessment of Graphene 2wt% Added to Li1.6Ni0.35Mn0.65O2 Half-Cell)

  • 조경원;이영환;한정흠;유제선;홍태환
    • 한국수소및신에너지학회논문집
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    • 제31권1호
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    • pp.132-137
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    • 2020
  • Lithium secondary batteries have become an important power source for portable electronic devices such as cellular phones, laptop computers. Presently, commercialized lithium-ion batteries use a LiCoO2 cathode. However, due to the high cost and environmental problems resulting from cobalt, an intensive search for new electrode materials is being actively conducted. Recently, solid solution LiMn1-xNixO2 have become attractive because of high capacity and enhanced safety at high voltages over 4.5 V. The Li1.6Ni0.35Mn0.65O2 compounds were conventionally prepared by a sol-gel method, which can produce the layered Li-Ni-Mn-O compounds with a high homogeneity. And by adding a graphene 2wt% the first charge-discharge voltage profiles was increased over Li1.6Ni0.35Mn0.65O2 compound. Also, the variation s of the discharge capacities with cycling showed a higher capacity retention rater. In this study, material lifecycle evaluation was performed to analyze the environmental impact characteristics of Li1.6Ni0.35Mn0.65O2 & graphene 2wt% half-cell manufacturing process. The software of material life cycle assessment was Gabi. Through this, environmental impact assessment was performed for each process. The environmental loads induced by Li1.6Ni0.35Mn0.65O2 & graphene 2wt% synthesis process were quantified and analyzed, and the results showed that the amount of power had the greatest impact on the environment.

리튬이온전지용 정극활물질 LiNi0.4Mn0.3Co0.3O2의 전기화학적 특성 (Electrochemical Properties of LiNi0.4Mn0.3Co0.3O2 Cathode Material for Lithium Ion Battery)

  • 공명철;김현수;김기택;구할본
    • 한국전기전자재료학회논문지
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    • 제19권7호
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    • pp.650-654
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    • 2006
  • [ $LiNi_{0.4}Mn_{0.3}Co_{0.3}O_2$ ] cathode material was synthesized by a mixed hydroxide method. Structural characterization was carried out using X-ray diffraction studies. Electrochemical studies were performed by assembling 2032 coin cells with lithium metal as an anode. DSC (Differential scanning calorimetry) data showed that exothermic reactions of $LiNi_{0.4}Mn_{0.3}Co_{0.3}O_2$ charged to 4.3 V versus Li started at high temperatures$(280\sim390^{\circ}C)$. The cell of $LiNi_{0.4}Mn_{0.3}Co_{0.3}O_2$ mixed cathode delivered a discharge capacity of 150 mAh/g at a 0.2 C rate. The capacity of the cell decreased with the current rate and a useful capacity of 134 mAh/g was obtained at a 2 C rate. The reversible capacity after 100th cycles was 126 mAh/g when a cell was cycled at a current rate of 0.5 C in $2.8\sim4.3V$.

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.

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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LiCl-Li2O 용융염에서 Inconel 합금 및 Incoloy 800H의 고온 부식거동 (Hot Corrosion Behavior of Inconel Alloys and Incoloy 800H in Molten LiCl-Li2O Salt)

  • 임종호;최정묵
    • 한국재료학회지
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    • 제23권2호
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    • pp.128-134
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    • 2013
  • A study on the corrosion behavior of Inconel alloys and Incoloy 800H in molten salt of LiCl-$Li_2O$ was investigated at $650^{\circ}C$ for 24-312 hours in an oxidation atmosphere. The order of the corrosion rate was Inconel 600 < Inconel 601 < Incoloy 800H < Inconel 690. Inconel 600 showed the best performance suggesting that the content of Fe, Cr and Ni are the important factor for corrosion resistance in hot molten salt oxidation conditions. The corrosion products of Inconel 600 and Inconel 601 were $Cr_2O_3$ and $NiFe_2O_4$, In case of Inconel 690, a single layer of $Cr_2O_3$ was formed in the early stage of corrosion and an outer layer of $NiFe_2O_4$ and inner layer of $Cr_2O_3$ were formed with an increase of corrosion time. In the case of Incoloy 800H, $Cr_2O_3$ and $FeCr_2O_4$ were observed. Most of the outer scale of the alloys was observed to be spalled from the results of the SEM analysis and the unspalled scale which adhered to the substrate was composed of three layers. The outer layer, the middle one, and the inner one were Fe, Cr, and Ni-rich, respectively. Inconel 600 showed localized corrosion behavior and Inconel 601, 690 and Incoloy 800H showed uniform corrosion behavior. Ni improves the corrosion resistance and too much Cr and/or Fe content deteriorates the corrosion resistance.

Effect of Calcination Temperature of Size Controlled Microstructure of LiNi0.8Co0.15Al0.05O2 Cathode for Rechargeable Lithium Battery

  • Park, Tae-Jun;Lim, Jung-Bin;Son, Jong-Tae
    • Bulletin of the Korean Chemical Society
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    • 제35권2호
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    • pp.357-364
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    • 2014
  • Size controlled, $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2$ cathode powders were prepared by co-precipitation method followed by heat treatment at temperatures between 750 and $850^{\circ}C$. The synthesized samples are characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM) and electrochemical performance. The synthesized $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2$ after calcined at $750^{\circ}C$ has a good electrochemical performance with an initial discharge capacity of $190mAhg^{-1}$ and good capacity retention of 100% after 30 cycles at 0.1C ($17mAg^{-1}$). The capacity retention of $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2$ after calcined at $750^{\circ}C$ is better than that at 800 and $850^{\circ}C$ without capacity loss at various high C rates. This is ascribed to the minimized cation disorder, a higher conductivity, and higher lithium ion diffusion coefficient ($D_{Li}$) observed in this material. In the differential scanning calorimetry DSC profile of the charged sample, the generation of heat by exothermic reaction was decreased by calcined at high temperature, and this decrease is especially at $850^{\circ}C$. This behavior implies that the high temperature calcinations of $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2$ prevent phase transitions with the release of oxygen.