• 제목/요약/키워드: Al cathode

검색결과 274건 처리시간 0.022초

Studies on Multi-step Addition of NMP in (LiNi0.80Co0.15Al0.05) (NCA) Cathode Slurry Preparation and its Rheological, Mechanical Strength and Electrochemical Properties for Li-ion Cells

  • Vasudevarao Pasala;Satyanarayana Maddukuri;V. Sethuraman;Rekha Lankipalli;Devi Gajula;Venkateswarlu Manne
    • Journal of Electrochemical Science and Technology
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    • 제14권3호
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    • pp.262-271
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    • 2023
  • For electrode stability and the electrochemical performance of the Li-ion cell, it is essential that the active ingredients and unique additives in the polymer binder be well dispersed with the solvent-based slurry. The efficient procedure used to create the slurry affects the rheological characteristics of the electrode slurry. When successively adding different steps of Nmethyl-2-pyrrolidone (NMP) solvent to the cathode composition, it is evenly disseminated. The electrochemical performance of the Li-ion cells and the electrodes made with slurry formed by single step and multiple steps of addition of NMP solvent are examined. To preform rheological properties of cathode electrode slurry on Ni-rich Lithium Nickel-Cobalt-Aluminum Oxide (LiNi0.80Co0.15Al0.05) (NCA). Also, we investigate different step addition of electrode formation and mechanical strength characterization like peel strength. According to the EIS study, a multi-step electrode slurry has lower internal resistance than a single-step electrode slurry, which results in better electrical characteristics and efficiency. Further, microstructure of electrodes is obtained electrochemical performance in the 18650 cylindrical cells with targeted capacity of 1.5 Ah. The slurry of electrodes prepared by single step and multiple steps of addition of NMP solvent and its effect on the fabrication of 1.5 Ah cells. A three-step solvent addition on slurry has been found to be a lower internal resistance than a single-step electrode slurry as confirmed by the EIS analysis, yielding improved electrical properties and efficiency.

Electrochemical Properties of LiNi0.8Co0.16Al0.04O2 and Surface Modification with Co3(PO4)2 as Cathode Materials for Lithium Battery

  • Ryu, Kwang-Sun;Lee, Sang-Hyo;Park, Yong-Joon
    • Bulletin of the Korean Chemical Society
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    • 제29권9호
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    • pp.1737-1741
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    • 2008
  • The electrochemical and thermal stability of $LiNi_{0.8}Co_{0.16}Al_{0.04}O_2$ were studied before and after $Co_3(PO_4)_2$ coating. Different to conventional coating material such as $ZrO_2$ or AlPO4, the coating layer was not detected clearly by TEM analysis, indicating that the $Co_3(PO_4)_2$ nanoparticles effectively reacted with surface impurities such as $Li_2CO_3$. The coated sample showed similar capacity at a low C rate condition. However, the rate capability was significantly improved by the coating effect. It is associated with a decrease of impedance after coating because impedance can act as a major barrier for overall cell performances in high C rate cycling. In the DSC profile of the charged sample, exothermic peaks were shifted to high temperatures and heat generation was reduced after coating, indicating the thermal reaction between electrode and electrolyte was sucessfully suppressed by $Co_3(PO_4)_2$ nanoparticle coating.

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

  • 장윤한;최세영
    • 전기화학회지
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    • 제10권3호
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    • pp.184-189
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    • 2007
  • 전자 산업의 발전과 함께 휴대폰, 노트북, PDA등과 같은 휴대 정보 전자 기기의 고성능 에너지 공급원으로서 이차전지 산업의 중요성이 높아지고 있다. 이에 따라 리튬이차전지의 핵심부품인 양극재료의 고성능화 및 안전성 확보에 대해 많은 관심이 증대되고 있다. 현재 사용되고 있는 양극재료에는 $LiCoO_2,\;LiMn_2O_4,\;LiNi_xCo_yMn_zO_2,\;LiNi_xCo_yM_zO_2$ (M=Al, Zr, Mg 등) 등이 있으며, 그중 가장 대표적으로 사용되고 있는 물질은 $LiCoO_2$이다. 그러나 $LiCoO_2$가 가지고 있는 용량적 한계 및 안전성 문제로 인하여 $LiCoO_2$의 성능 개선 및 3성분계, 올리빈계와 같은 대체물질의 개발에 대한 연구가 활발히 진행중이다. 특히 산화물($M_xO_3$)을 이용한 활물질 표면처리와 같은 성능개선 및 안전성 확보연구는 국내 및 국외에서 활발히 진행되고 있다. 본 연구에서는 $LiCoO_2$의 표면처리 과정에서 불균일 코팅된 산화물의 탈리 및 이의 응집에 의한 침전물 생성 및 표면처리량의 증가에 따른 전지에서의 부작용에 대하여 분석하고, 이와 같은 문제점을 개선하기 위해 코팅량 조정 및 표면처리 공정의 혼합, 건조, 소성 조건 등과 같은 신공정에 대한 연구와 전기화학적 특성 고찰을 실시하였다.

알루미늄이 첨가된 Li(Ni1/3Co1/3Mn1/3-xAlx)O2 양극활물질의 전기화학적 특성 (Electrochemical Properties of Al Doped Li(Ni1/3Co1/3Mn1/3-xAlx)O2, Cathode Materials)

  • 김선혜;심광보;김창삼
    • 전기화학회지
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    • 제9권2호
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    • pp.64-69
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    • 2006
  • 초음파분무열분해법과 한 단계의 후열처리로 이차상이 없는 Al이 첨가된 $Li(Ni_{1/3}Co_{1/3}Mn_{1/3-x}Al_x)O_2$ (x=0.0, 0.005, 0.01. 0.05) 리튬이차전지용 양극활물질을 합성하였다. 합성된 분말은 Al의 첨가량이 많아짐에 따라서 $I_{003}/I_{104}$ 비는 감소하고 입자가 커지는 경향을 보였다. 상온에서 전류밀도 1C의 rate로 $3.0\sim4.5V$ 범위에서 충방전 시험한 결과, Al 치환량이 0.5와 1.0 at%에서는 초기용량이 180과 $184mAhg^{-1}$으로 치환하지 않았을 때의 $182mAhg^{-1}$과 차이가 없었으며, 싸이클 특성도 치환하지 않은 것과 0.5, 1.0 at% 치환한 조성에서 각각 81, 77, 81%의 방전용량이 유지되었다. 그러나 $3.0\sim4.6V$에서는 치환효과가 확실하게 나타나서, 50 싸이클 후의 치환하지 않은 것의 방전용량은 초기용량의 30%가지 감소한데 비하여 Al을 0.5 at% 치환한 것은 70%를 유지하였다. 치환에 의한 싸이클 특성 향상은 XPS 분석 결과 Al 치환이 $Mn^{3+}$의 양을 감소시켰기 때문인 것으로 사료되었다.

이차전지 전극용 Al-Cu의 레이저 용접 (Al-Cu Electrode Laser Welding for Rechargeable Battery)

  • 황승준;김태완;전욱상;정재필
    • 마이크로전자및패키징학회지
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    • 제26권4호
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    • pp.1-6
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    • 2019
  • Recently, as electric vehicles and hybrid vehicles are widely used, the use of rechargeable batteries is increasing. Electric and hybrid cars are made up of hundreds to thousands of electric cells depending on the car model. And the assembly process of the cells and modules requires a variety of bonding process. Meanwhile, in order to connect several cells in series, Cu used as a cathode and Al of an anode must be bonded. In this paper, the characteristics of Al and Cu metals, laser types, characteristics and principles of welding lasers for welding of Cu and Al electrodes are introduced.

NCM계 리튬이온 배터리 양극재의 수소환원 거동 (Hydrogen Reduction Behavior of NCM-based Lithium-ion Battery Cathode Materials)

  • 이소영;이소연;이대현;손호상
    • 한국분말재료학회지
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    • 제31권2호
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    • pp.163-168
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    • 2024
  • As the demand for lithium-ion batteries for electric vehicles is increasing, it is important to recover valuable metals from waste lithium-ion batteries. In this study, the effects of gas flow rate and hydrogen partial pressure on hydrogen reduction of NCM-based lithium-ion battery cathode materials were investigated. As the gas flow rate and hydrogen partial pressure increased, the weight loss rate increased significantly from the beginning of the reaction due to the reduction of NiO and CoO by hydrogen. At 700 ℃ and hydrogen partial pressure above 0.5 atm, Ni and Li2O were produced by hydrogen reduction. From the reduction product and Li recovery rate, the hydrogen reduction of NCM-based cathode materials was significantly affected by hydrogen partial pressure. The Li compounds recovered from the solution after water leaching of the reduction products were LiOH, LiOH·H2O, and Li2CO3, with about 0.02 wt% Al as an impurity.

분무열분해 공정에 의해 합성된 Al이 치환된 LiMn2O4 분말의 특성 (Properties of Al Doped LiMn2O4 Powders Prepared by Spray Pyrolysis Process)

  • 주서희;장희찬;강윤찬
    • Korean Chemical Engineering Research
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    • 제47권1호
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    • pp.84-88
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    • 2009
  • Al이 치환된 $LiMn_2O_4$ 미세 분말을 구연산과 에틸렌 글리콜이 첨가된 분무용액으로부터 분무열분해 공정에 의해 합성하였다. 구형의 형상, 다공성의 구조 및 마이크론 크기를 가지는 전구체 분말들은 $800^{\circ}C$ 이상의 후열처리 온도에서 마이크론 크기 및 균일한 형태를 가지는 $LiMn_{11/6}Al_{1/6}O_4$ 분말들로 전환되었다. 후열처리 온도가 $700^{\circ}C$ 일 때 $LiMn_{11/6}Al_{1/6}O_4$ 분말은 94 mAh/g의 낮은 초기 방전 용량을 가졌다. 후열처리 온도가 $750^{\circ}C$에서 $1,000^{\circ}C$로 증가함에 따라 $LiMn_{11/6}Al_{1/6}O_2$ 분말의 초기 방전 용량은 103 mAh/g에서 117 mAh/g로 변화하였으며, 후열처리 온도 $750^{\circ}C$에서 최대 초기 방전용량을 가졌다. 반면에 후열처리 온도 $900^{\circ}C$에서 얻어진 $LiMn_{11/6}Al_{1/6}O_2$ 분말들이 좋은 사이클 특성을 가졌다. 전류밀도 0.1 C에서 70 사이클 충방전 후에 $LiMn_{11/6}Al_{1/6}O_4$ 분말들의 방전 용량은 107 mAh/g에서 100 mAh/g으로 감소하였고 93%의 사이클 효율을 유지하였다.

3.5% NaCl 수용액 내 TWIP강의 부식거동에 미치는 합금원소 (Cu, Al, Si)의 영향 (Effect of Alloying Elements (Cu, Al, Si) on the Electrochemical Corrosion Behaviors of TWIP Steel in a 3.5 % NaCl Solution)

  • 김시온;황중기;김성진
    • Corrosion Science and Technology
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    • 제18권6호
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    • pp.300-311
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    • 2019
  • The corrosion behaviors of twinning-induced plasticity (TWIP) steels with different alloying elements (Cu, Al, Si) in a neutral aqueous environment were investigated in terms of the characteristics of the corrosion products formed on the steel surface. The corrosion behavior was evaluated by measuring potentiodynamic polarization test and electrochemical impedance spectroscopy. For compositional analysis of the corrosion products formed on the steel surface, an electron probe x-ray micro analyzer was also utilized. This study showed that the addition of Cu to the steel contributed to the increase in corrosion resistance to a certain extent by the presence of metallic Cu in discontinuous form at the oxide/steel interface. Compared to the case of steel with Cu, the Al-bearing specimen exhibited much higher polarization resistance and lower corrosion current by the formation of a thin Al-enriched oxide layer. On the other hand, Si addition (3.0 wt%) to the steel led to an increase in grain size, which was twice as large as that of the other specimens, resulting in a deterioration of the corrosion resistance. This was closely associated with the localized corrosion attacks along the grain boundaries by the formation of a galvanic couple with a large cathode-small anode.

An Analytical Model for the Threshold Voltage of Short-Channel Double-Material-Gate (DMG) MOSFETs with a Strained-Silicon (s-Si) Channel on Silicon-Germanium (SiGe) Substrates

  • Bhushan, Shiv;Sarangi, Santunu;Gopi, Krishna Saramekala;Santra, Abirmoya;Dubey, Sarvesh;Tiwari, Pramod Kumar
    • JSTS:Journal of Semiconductor Technology and Science
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    • 제13권4호
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    • pp.367-380
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    • 2013
  • In this paper, an analytical threshold voltage model is developed for a short-channel double-material-gate (DMG) strained-silicon (s-Si) on silicon-germanium ($Si_{1-X}Ge_X$) MOSFET structure. The proposed threshold voltage model is based on the so called virtual-cathode potential formulation. The virtual-cathode potential is taken as minimum channel potential along the transverse direction of the channel and is derived from two-dimensional (2D) potential distribution of channel region. The 2D channel potential is formulated by solving the 2D Poisson's equation with suitable boundary conditions in both the strained-Si layer and relaxed $Si_{1-X}Ge_X$ layer. The effects of a number of device parameters like the Ge mole fraction, Si film thickness and gate-length ratio have been considered on threshold voltage. Further, the drain induced barrier lowering (DIBL) has also been analyzed for gate-length ratio and amount of strain variations. The validity of the present 2D analytical model is verified with ATLAS$^{TM}$, a 2D device simulator from Silvaco Inc.

Enhancement of Electrochemical Activity of Ni-rich LiNi0.8Mn0.1Co0.1O2 by Precisely Controlled Al2O3 Nanocoatings via Atomic Layer Deposition

  • Ramasamy, Hari Vignesh;Sinha, Soumyadeep;Park, Jooyeon;Gong, Minkyung;Aravindan, Vanchiappan;Heo, Jaeyeong;Lee, Yun-Sung
    • Journal of Electrochemical Science and Technology
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    • 제10권2호
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    • pp.196-205
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    • 2019
  • Ni-rich layered oxides $Li(Ni_xCo_yMn_z)O_2$ (x + y + z = 1) have been extensively studied in recent times owing to their high capacity and low cost and can possibly replace $LiCoO_2$ in the near future. However, these layered oxides suffer from problems related to the capacity fading, thermal stability, and safety at high voltages. In this study, we use surface coating as a strategy to improve the thermal stability at higher voltages. The uniform and conformal $Al_2O_3$ coating on prefabricated electrodes using atomic layer deposition significantly prevented surface degradation over prolonged cycling. Initial capacity of 190, 199, 188 and $166mAh\;g^{-1}$ is obtained for pristine, 2, 5 and 10 cycles of ALD coated samples at 0.2C and maintains 145, 158, 151 and $130mAh\;g^{-1}$ for high current rate of 2C in room temperature. The two-cycle $Al_2O_3$ modified cathode retained 75% of its capacity after 500 cycles at 5C with 0.05% capacity decay per cycle, compared with 46.5% retention for a pristine electrode, at an elevated temperature. Despite the insulating nature of the $Al_2O_3$ coating, a thin layer is sufficient to improve the capacity retention at a high temperature. The $Al_2O_3$ coating can prevent the detrimental surface reactions at a high temperature. Thus, the morphology of the active material is well-maintained even after extensive cycling, whereas the bare electrode undergoes severe degradation.