• 제목/요약/키워드: Lithium ion secondary batteries

검색결과 165건 처리시간 0.031초

상온형 나트륨/유황 이차전지 개발 동향 (Development of Room Temperature Na/S Secondary Batteries)

  • 유호석;김인수;박진수
    • 한국수소및신에너지학회논문집
    • /
    • 제27권6호
    • /
    • pp.753-763
    • /
    • 2016
  • High temperature sodium/sulfur battery(Na/S battery) has good electrochemical properties, but, the battery has some problems such as explosion and corrosion at al. because of using the liquid electrodes at high temperature and production of high corrosion. Room temperature sodium/sulfur batteries (NAS batteries) is developed to resolve of the battery problem. To recently, room temperature sodium/sulfur batteries has higher discharge capacity than its of lithium ion battery, however, cycle life of the battery is shorter. Because, the sulfur electrode and electrolyte have some problem such as polysulfide resolution in electrolyte and reaction of anode material and polysulfide. Cycle life of the battery is improved by decrease of polysulfide resolution in electrolyte and block of reaction between anode material and polysulfide. If room temperature sodium/sulfur batteries (NAS batteries) with low cost and high capacity improves cycle life, the batteries will be commercialized batteries for electric storage, electric vehicle, and mobile electric items.

Novel Synthesis Method and Electrochemical Characteristics of Lithium Titanium Oxide as Anode Material for Lithium Secondary Battery

  • Kim Han-Joo;Park Soo-Gil
    • KIEE International Transactions on Electrophysics and Applications
    • /
    • 제5C권3호
    • /
    • pp.119-123
    • /
    • 2005
  • Lithium titanium oxide as anode material for energy storage prepared by novel synthesis method. Li$_{4}$Ti$_{5}$O$_{12}$ based spinel-framework structures are of great interest material for lithium-ion batteries. We describe here Li$_{4}$Ti$_{5}$O$_{12}$ a zero-strain insertion material was prepared by novel sol-gel method and by high energy ball milling (HEBM) of precursor to from nanocrystalline phases. According to the X-ray diffraction and scanning electron microscopy analysis, uniformly distributed Li$_{4}$ Ti$_{5}$O$_{12}$ particles with grain sizes of 100nm were synthesized. Lithium cells, consisting of Li$_{4}$ Ti$_{5}$O$_{12}$ anode and lithium cathode showed the 173 mAh/g in the range of 1.0 $\~$ 3.0 V. Furthermore, the crystalline structure of Li$_{4}$ Ti$_{5}$O$_{12}$ didn't transform during the lithium intercalation and deintercalation process.

전이금속 치환 리튬이온 이차전지 정극 Li($Mn_{1-\delta}$$M_{\delta}$)$_2$$O_4$의 전기적 특성 (Electrical Characteristics of Cathode Li($Mn_{1-\delta}$$M_{\delta}$)$_2$$O_4$ Substituted by Transition Metals in Li-Ion Secondary Batteries)

  • 박재홍;김정식;유광수
    • 한국세라믹학회지
    • /
    • 제37권5호
    • /
    • pp.466-472
    • /
    • 2000
  • As cathode materials of LiMn2O4-based lithium-ion secondary batteries, Li(Mn1-$\delta$M$\delta$)2O4 (M=Ni and Co, $\delta$=0, 0.05, 0.1 and 0.2) materials which Co and Ni are substituted for Mn, were syntehsized by the solid state reaction at 80$0^{\circ}C$ for 48 hours. No second phases were formed in Li(Mn1-$\delta$M$\delta$)2O4 system with substitution of Co. However, substitution of Ni caued to form a second phase of NiO when its composition exceeded over 0.2 of $\delta$ in Li(Mn1-$\delta$M$\delta$)2O4. As the results of charging-discharging test, the maximum capacity of Li(Mn1-$\delta$M$\delta$)2O4 appeared in $\delta$=0.1 for both Co and Ni. Also, Li(Mn1-$\delta$M$\delta$)2O4 electrode showed higher capacity and better cycle performance than LiMn2O4.

  • PDF

고전압용 리튬이차전지 바인더 개발을 위한 시뮬레이션 및 전기화학 평가 비교를 통한 산화분해전압 예측 연구 (The Study on Prediction of Oxidative Decomposition Potential by Comparison between Simulation and Electrochemical Methods to Develop the Binder for High-voltage Lithium-ion Batteries)

  • 유지민;알렉세이 카사에프;이맹은
    • 전기화학회지
    • /
    • 제16권3호
    • /
    • pp.177-183
    • /
    • 2013
  • 고전압에서도 사용 가능한 바인더 개발에 대한 요구가 증대됨에 따라 이에 적합한 내산화성이 우수한 바인더를 양자화학적 모델링에 기반하여 제안하고자 하였다. 각 고분자 poly(acryl amide)(PAM), poly(methyl acrylate)(PMA), poly(vinylidene fluoride)(PVDF), poly(hexafluropropylene)(PHFP)에 대하여 반경험적 방법(Semi-empirical method) 및 밀도범함수 이론(Density Functional Theory, DFT) 방법을 이용하여 단량체부터 사량체까지의 고분자 바인더에 대한 최고 점유 분자 궤도함수(Highest occupied molecular orbital, HOMO) 에너지와 이온화 에너지(Ionization Potential, IP) 값을 구하여 실험 값과 비교하였다. 밀도범함수 방법으로 해석한 결과, PHFP, PVDF, PMA, PAM 순으로 고분자의 내산화성이 좋은 것으로 시뮬레이션을 통해 예측되었고, 이러한 결과는 선형 훑음 전압-전류법(Linear Sweep Voltametry, LSV)으로부터 얻은 실험값과 일치하였다. 또한 이 결과는 HOMO 오비탈의 구조를 분석하여 내산화성이 좋은 원인을 규명하였다.

The Polyaniline Electrode Doped with Li Salt and Protonic Acid in Lithium Secondary Battery

  • Ryu, Kwang-Sun;Kim, Kwang-Man;Hong, Young-Sik;Park, Yong-Joon;Jang, Soon-Ho
    • Bulletin of the Korean Chemical Society
    • /
    • 제23권8호
    • /
    • pp.1144-1148
    • /
    • 2002
  • We prepared the polyaniline (Pani) film and powder by chemical polymerization and doping with different dopants and also investigated the capability of Li//polyaniline cells after assembling. The oxidation/reduction potentials and electrochemical reaction of Li//polyaniline cells were tested by cyclic voltammetry technique. The Li//Pani-HCl cells with 10% and 20% conductors show a little larger specific discharge capacities than that without conductor. The highest discharge capacity of almost 50 mAh/g at 100th cycle is also achieved. However, Li//Pani-LiPF6 with 20% conductor shows a remarkable performance of ~90 mAh/g at 100th cycle. This is feasible value for using as the positive electrode material of lithium ion secondary batteries. It is also proved that the powder type electrode of Pani is better to use than the film type one to improve the specific discharge capacity and its stability with cycle.

전기자동차 내 리튬이온전지 화재로 발생하는 독성가스의 위험성 분석 (Consequence Analysis of Toxic Gases Generated by Fire of Lithium Ion Batteries in Electric Vehicles)

  • 오의영;민동석;한지윤;정승호;강태선
    • 한국가스학회지
    • /
    • 제23권1호
    • /
    • pp.54-61
    • /
    • 2019
  • 휴대용 전자기기의 시장이 성장함에 따라서 Lithium Ion Battery(LIB)의 수요 또한 증가하고 있다. LIB는 다른 2차 전지에 비해 높은 효율성을 보이지만 열 폭주(Thermal runaway)로 인한 폭발/화재의 위험성이 있다. 특히나 대용량 LIB cell을 탑재한 Electric Vehicle(EV)의 경우 화재로 발생하는 대량의 독성 가스로 인한 위험성 또한 존재한다. 따라서 사고 피해를 최소화하기 위한 EV 화재로 발생하는 독성 가스의 위험성 분석이 필요하다. 이 연구에서는 EV의 화재로 발생하는 독성 가스의 유동을 전산유체역학(Computational Fluid Dynamic; CFD)을 이용하여 해석하였다. 문헌 조사 결과와 국내 EV 자료를 기반으로 시나리오를 설정하여 시나리오 발생 경과시간에 따른 독성 가스의 확산을 수치 해석하여 위험성에 대하여 분석 하였다. 이 연구는 EV 화재로 인한 독성 가스의 위험성을 분석하여 사고 발생에 의한 인명, 재산피해를 최소화하는데 의의를 가진다.

Performance of Expanded Graphite as Anode Materials for High Power Li-ion Secondary Batteries

  • Park, Do-Youn;Lim, Yun-Soo;Kim, Myung-Soo
    • Carbon letters
    • /
    • 제11권4호
    • /
    • pp.343-346
    • /
    • 2010
  • The various expanded graphites (EGs) was prepared and applied as anode material for high power Li-ion secondary battery (LIB). By changing the processing conditions of EG, a series of EG with different structure were produced, showing the changed electrochemical properties. The charge-discharge test showed that the initial reversible capacity of EG anodes prepared at the suitable conditions was over 400 mAh/g and the charge capacity at 5 C-rate was 83.2 mAh/g. These values demonstrated the much improved electrochemical properties as compared with those for the graphite anode of 360 mAh/g and 19.4 mAh/g, respectively, showing the possibility of EG anode materials for high power LIB.

Crystallinity and Battery Properties of Lithium Manganese Oxide Spinel with Lithium Titanium Oxide Spinel Coating Layer on Its Surface

  • Ji, Mi-Jung;Kim, Eun-Kyung;Ahn, Yong-Tae;Choi, Byung-Hyun
    • 한국세라믹학회지
    • /
    • 제47권6호
    • /
    • pp.633-637
    • /
    • 2010
  • In this study, lithium manganese oxide spinel ($LiMn_{1.9}Fe_{0.1}Nb_{0.0005}O_4$) as a cathode material of lithium ion secondary batteries is synthesized with spray drying, and in order to increase its crystallinity and electrochemical properties, the granulated $LiMn_{1.9}Fe_{0.1}Nb_{0.0005}O_4$ particle surface is coated with lithium titanium oxide spinel ($Li_4Ti_5O_{12}$) through a sol-gel method. The granulated particles present a higher tap density and lower specific surface area. The crystallinity and discharge capacity of the $Li_4Ti_5O_{12}$ coated material is relatively higher than uncoated material. With the coating layer, the discharge capacity and cycling stability are increased and the capacity fading is suppressed successfully.

Amorphous Vanadium Titanates as a Negative Electrode for Lithium-ion Batteries

  • Lee, Jeong Beom;Chae, Oh. B.;Chae, Seulki;Ryu, Ji Heon;Oh, Seung M.
    • Journal of Electrochemical Science and Technology
    • /
    • 제7권4호
    • /
    • pp.306-315
    • /
    • 2016
  • Amorphous vanadium titanates (aVTOs) are examined for use as a negative electrode in lithium-ion batteries. These amorphous mixed oxides are synthesized in nanosized particles (<100 nm) and flocculated to form secondary particles. The $V^{5+}$ ions in aVTO are found to occupy tetrahedral sites, whereas the $Ti^{4+}$ ions show fivefold coordination. Both are uniformly dispersed at the atomic scale in the amorphous oxide matrix, which has abundant structural defects. The first reversible capacity of an aVTO electrode ($295mAhg^{-1}$) is larger than that observed for a physically mixed electrode (1:2 $aV_2O_5$ | $aTiO_2$, $245mAhg^{-1}$). The discrepancy seems to be due to the unique four-coordinated $V^{5+}$ ions in aVTO, which either are more electron-accepting or generate more structural defects that serve as $Li^+$ storage sites. Coin-type Li/aVTO cells show a large irreversible capacity in the first cycle. When they are prepared under nitrogen (aVTO-N), the population of surface hydroxyl groups is greatly reduced. These groups irreversibly produce highly resistive inorganic compounds (LiOH and $Li_2O$), leading to increased irreversible capacity and electrode resistance. As a result, the material prepared under nitrogen shows higher Coulombic efficiency and rate capability.

배터리 전해질 유기용매인 EC(Ethylene Carbonate)의 연소특성치 측정 (Measurement of Combustible Characteristics of EC(Ethylene Carbonate) for Battery Electrolyte Organic Solvent)

  • 장유리;장유선;최재준;하동명
    • 한국가스학회지
    • /
    • 제27권4호
    • /
    • pp.50-55
    • /
    • 2023
  • 리튬이온 2차전지는 현재 많은 수요와 공급이 이루어지고 있다. 본 연구에서는 리튬이온전지의 전해질 유기용매로 사용되는 EC(Ethylene Carbonate)의 연소특성치 연구를 통해 이를 취급하는 공정의 안전성 확보를 목적으로 한다. 밀폐식 장치인 Setaflash와 Pensky-Martens에 의한 EC의 인화점은 141 ℃와 143 ℃, 개방식 장치인 Tag와 Cleveland는 각각 152 ℃와 156 ℃로 측정되었으며 AIT(Auto Ignition Temperature)는 420 ℃로 측정되었다. Setaflash에서 측정된 인화점에 의한 LEL(Lower Explosive Limit) 은 3.6 Vol.%로 계산되었다.