• 제목/요약/키워드: CoO layered compounds

검색결과 11건 처리시간 0.032초

도데칸술폰이 삽입된 금속 화합물, [M($H_2O$)$_6$(C$_12$H$_25$SO$_3$)$_2$.x$H_2O$ (M=Co, Cu)의 층상 구조의 열적 성질 (Thermal Behavior of the Layered Structure in Metal-dodecanesulfonate intercalation compounds, [M($H_2O$)$_6$](C$_12$H$_25$SO$_3$)$_2$.x$H_2O$ (M=Co, Cu))

  • 허영덕;박성훈;전태현
    • 한국표면공학회지
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    • 제33권1호
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    • pp.25-33
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    • 2000
  • The synthesis and characterization of intercalated compound of dodecanesulfornate into hydrated metal, [M($H_2$O)\ulcorner](C\ulcornerH\ulcorner$SO_3$)$_2$.$xH_2$O (M=Co, Cu) was presented. The compounds shows a layered structure which was determined by powder X-ray diffraction. Thermal behavior of the layered structure was investigated using thermal analysis, and FT-IR spectroscopy by varying the temperature. The increase in layer spacing of the products by increasing the temperature is also checked by X-ray diffraction. We can suggest three kinds of layered structure by varying the temperature, which is accompanied by changing the intercalated dodecanesulfonate from the monolayer to the bilayer structure or changing the tilt angle.

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Mn-Co-0계 NTC 써 미스터의 물성에 미치는 혼합의 영향 (Mixing effect on Properties of NTC Thermistor in Mn-Co-0 System)

  • 윤상식;김경식;윤상옥
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2001년도 추계학술대회 논문집
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    • pp.459-462
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    • 2001
  • Interface effects on properties of NTC thermistors having Mn-Co-O spinel crystal structure system are analyzed by a mixing rule in case of mixed types and layered types between CuO and Al$_2$O$_3$ added compounds. With adding CuO and Al$_2$O$_3$, The compounds form completely solid solution and their resistance and B constant are changed due to the variation of conduction electrons by their ionic substitutions. The properties of mixed NTC thermistors are depended on the logarithmic mixing rule by a dispersed phase and they show slightly lower values due to the lattice mixing affect in compared with calculated values. The resistance of layered NTC thermistors is depended upon the series mixing rule containing the value of an interface layer and effected by the variation of its thickness, and it is changed rapidly to the logarithmic mixing rule by the connection between two layers with increasing the interface layer

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Mn-Co-O계 NTC 써미스터의 물성에 미치는 혼합의 영향 (Mixing effect on Properties of NTC Thermistor in Mn-Co-O System)

  • 윤상식;김경식;윤상옥
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2001년도 추계학술대회 논문집 Vol.14 No.1
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    • pp.459-462
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    • 2001
  • Interface effects on properties of NTC thermistors having Mn-Co-O spinel crytal structure system are analyzed by a mixing rule in case of mixed types and layered types between CuO and $Al_{2}O_{3}$ added compounds. With adding CuO and $Al_{2}O_{3}$, The compounds form completely solid solution and their resistance and B constant are changed due to the variation of conduction electrons by their ionic substitutions. The properties of mixed NTC thermistors are depended on the logarithmic mixing rule by a dispersed phase and they show slightly lower values due to the lattice mixing affect in compared with calculated values. The resistance of layered NTC thennistors is depended upon the series mixing rule containing the value of an interface layer and effected by the variation of its thickness, and it is changed rapidly to the logarithmic mixing rule by the connection between two layers with increasing the interface layer.

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Electrochemical Properties of LixCoyNi1-yO2 Prepared by Citrate Sol0Gel Method

  • 장순호;강성구;장기호
    • Bulletin of the Korean Chemical Society
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    • 제18권1호
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    • pp.61-65
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    • 1997
  • The electrochemical properties of LixCoyNi1-yO2 compounds (y=0.1, 0.3, 0.5, 0.7, 1.0) prepared by citrate sol-gel method have been investigated. The LixCoyNi1-yO2 compounds were annealed at 850 ℃ for 20 h after preheating at 650 ℃ for 6 h, in air. The x-ray diffraction (XRD) patterns for LixCoyNi1-yO2 have shown that these compounds have a well developed layered structure (R&bar{3} m). From the scanning electron microscopy of LixCoyNi1-yO2, particle size was estimated less than 5 μm. The Li//LixCoyNi1-yO2 electrochemical cell consists of Li metal anode and 1 M LiClO4-propylene carbonate (PC) solution as the electrolyte. The differences in intercalation rate of the LixCoyNi1-yO2 in the first charge/discharge cycle were less than 0.05 e-. The first discharge capacities of LixCoO2 and LixCo0.3Ni0.7O2 were ∼130 mAh/g and ∼160 mAh/g, respectively.

제일원리계산을 이용한 리튬이차전지 양극활물질 LiNiO2의 표면 특성에 관한 연구 (First-Principles Investigation of the Surface Properties of LiNiO2 as Cathode Material for Lithium-ion Batteries)

  • 최희성;이맹은
    • 전기화학회지
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    • 제16권3호
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    • pp.169-176
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    • 2013
  • 현재 이차전지에서 사용중인 양극활물질은 구조 안정성이 높은 층상구조(Layered Structure)의 리튬 금속 산화물(Solid State Lithium Oxide Compounds)이 주로 사용된다. 최근에는 리튬이차전지의 성능향상을 위해서 음극활물질과 전해질 사이의 계면뿐만 아니라, 양극활물질과 전해질 사이의 계면에 관한 연구가 활발히 진행되고 있으며, 이러한 계면의 연구를 위해서는 음극활물질 뿐만 아니라, 양극활물질의 표면에 관한 연구도 선행적으로 이루어져야 하는 상황이다. 대표적인 리튬금속 산화물질인 니켈산리튬($LiNiO_2$)과 코발트산리튬($LiCoO_2$)은 서로 매우 유사한 구조를 갖는 층상구조의 양극활물질이다. 코발트산리튬이 다양한 실험적, 이론적 연구가 진행된 반면에, 니켈산 리튬은 실험적 연구에 비해서 이론적 연구가 부족하다. 따라서, 본 연구에서는 니켈산리튬의 X-선 회절계 측정 결과(XRD data)에 나오는9개의 표면 방향을 범밀도함수이론(Density Functional Theory)을 이용하여 니켈산리튬 표면의 표면 에너지를 계산하였다. 니켈산리튬의 X-선 회절계 측정 결과(XRD data)에서는 (003), (104), (101), (110) 결정 등등이 순차적으로 주요하게 존재하는 것으로 확인되었다. 그러나 시뮬레이션을 이용한 각각의 표면 에너지 계산 결과, X-선 회절계 측정 결과와 다른 순서로 안정한 표면 에너지가 나타나는 결과를 얻었다. 따라서 에너지적으로 안정한 표면이자, X-선 회절계에서 주요하게 나타나는 (104)와 (101) 방향의 니켈산리튬 표면이 많이 노출되어 Li 이온의 충방전시 리튬의 삽입 탈리에 영향을 줄 것으로 예상된다.

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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층상계 산화물 양극의 4.6V 고전압 특성 향상에서의 Sulfone 첨가제의 역할 (Role of Sulfone Additive in Improving 4.6V High-Voltage Cycling Performance of Layered Oxide Battery Cathode)

  • 강준섭;남경모;황의형;권영길;송승완
    • 전기화학회지
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    • 제19권1호
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    • pp.1-8
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    • 2016
  • 층상구조 삼성분계 $LiNi_{1-x-y}Co_xMn_yO_2$ 양극활물질을 4.3 V 이상 고전압으로 충전시키면 용량 증가를 기대할 수 있으나 기존 전해액의 산화안정성이 낮아 고전압 성능 구현에 제한이 있다. 본 연구에서는 설폰계 전해액 첨가제인 dimethyl sulfone (DMS), diethyl sulfone (DES), ethyl methyl sulfone (EMS)을 사용하여 $LiNi_{0.5}Co_{0.2}Mn_{0.3}O_2$ 양극의 고전압 특성을 향상시키고자 한다. 본 논문은 다양한 선형 sulfone계 첨가제가 포함된 전해액에서 3.0-4.6 V 전압범위에서 양극의 충방전 특성과 양극-전해액간 계면거동과 표면층 분석에 대한 내용으로 이루어져 있다. 특히 Dimethyl sulfone (DMS) 첨가제 사용시, 50 사이클 중 $198-173mAhg^{-1}$의 방전 용량과 87%의 용량유지율을 보여 기존 전해액 대비 상당히 향상된 충방전 안정성을 보였다. 표면조성 분광분석 결과, DMS 첨가제 사용시 양극에 안정한 표면보호층이 형성되고 금속 용출이 억제되어 고전압 충방전 특성이 향상되었음 알 수 있었다.

유기변성 LDH를 사용한 난연 ABS 나노복합재료의 열적 및 기계적 물성 (Thermal and Mechanical Properties of Flame Retardant ABS Nanocomposites Containing Organo-Modified Layered Double Hydoxide)

  • 김석준
    • Elastomers and Composites
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    • 제43권4호
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    • pp.241-252
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    • 2008
  • 올레인산으로 유기변성된 ZnAl-LDH(SO-ZnAl LDH)를 합성하여 브롬화 에폭시 수지(BER) 및 산화안티몬을 포함하는 난연 ABS 컴파운드에 첨가하였다. 난연 ABS 컴파운드는 동일방향으로 회전하는 이축압출기를 통해 제조되었고 난연성 및 기계적 성질을 측정하기 위한 시편으로 사출성형 되었다. ABS 나노복합재료의 XRD 패턴에서는 피크가 나타나지 않았다. SOZnAl LDH를 포함하는 난연 ABS 나노복합재료는 TGA 시험 결과 향상된 내열성을 보였다. 그러나, 난연 ABS 나노복합재료들은 UL 94 수직시험(1.6 mm 두께)시 등급을 얻지 못했다. BER를 1.5 wt% 이상 더 첨가한 경우들에서만 UL 94 V0 등급을 얻을 수 있었다. SO-ZnAl LDH의 첨가량에 비례하여 난연 ABS 나노복합재료의 노치드 아이조드 충격강도, 인장탄성률 및 신율은 증가하였으나 유동지수는 감소하였다.

Lithium-silicate coating on Lithium Nickel Manganese Oxide (LiNi0.7Mn0.3O2) with a Layered Structure

  • Kim, Dong-jin;Yoon, Da-ye;Kim, Woo-byoung;Lee, Jae-won
    • 한국분말재료학회지
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    • 제24권2호
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    • pp.87-95
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    • 2017
  • Lithium silicate, a lithium-ion conducting ceramic, is coated on a layer-structured lithium nickel manganese oxide ($LiNi_{0.7}Mn_{0.3}O_2$). Residual lithium compounds ($Li_2CO_3$ and LiOH) on the surface of the cathode material and $SiO_2$ derived from tetraethylorthosilicate are used as lithium and silicon sources, respectively. Powder X-ray diffraction and scanning electron microscopy with energy-dispersive spectroscopy analyses show that lithium silicate is coated uniformly on the cathode particles. Charge and discharge tests of the samples show that the coating can enhance the rate capability and cycle life performance. The improvements are attributed to the reduced interfacial resistance originating from suppression of solid-electrolyte interface (SEI) formation and dissolution of Ni and Mn due to the coating. An X-ray photoelectron spectroscopy study of the cycled electrodes shows that nickel oxide and manganese oxide particles are formed on the surface of the electrode and that greater decomposition of the electrolyte occurs for the bare sample, which confirms the assumption that SEI formation and Ni and Mn dissolution can be reduced using the coating process.