• 제목/요약/키워드: lithium-ion rechargeable batteries

검색결과 63건 처리시간 0.024초

Preparation and Characterization of Porous Silicon and Carbon Composite as an Anode Material for Lithium Rechargeable Batteries

  • Park, Junsoo;Lee, Jae-Won
    • 한국분말재료학회지
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    • 제22권1호
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    • pp.15-20
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    • 2015
  • The composite of porous silicon (Si) and amorphous carbon (C) is prepared by pyrolysis of a nano-porous Si + pitch mixture. The nano-porous Si is prepared by mechanical milling of magnesium powder with silicon monoxide (SiO) followed by removal of MgO with hydrochloric acid (etching process). The Brunauer-Emmett-Teller (BET) surface area of porous Si ($64.52m^2g^{-1}$) is much higher than that before etching Si/MgO ($4.28m^2g^{-1}$) which indicates pores are formed in Si after the etching process. Cycling stability is examined for the nano-porous Si + C composite and the result is compared with the composite of nonporous Si + C. The capacity retention of the former composite is 59.6% after 50 charge/discharge cycles while the latter shows only 28.0%. The pores of Si formed after the etching process is believed to accommodate large volumetric change of Si during charging and discharging process.

불화 알루미늄을 포함하는 표면 개질된 분리막으로부터 제조되는 리튬이온폴리머전지의 싸이클 특성에 관한 연구 (Cycling Performances of Lithium-Ion Polymer Cells Assembled with Surface-Modified Separators Containing Aluminum Fluoride)

  • 어승민;김동원
    • 전기화학회지
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    • 제11권2호
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    • pp.125-129
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    • 2008
  • 리튬이온폴리머전지는 휴대용 전자기기와 전기자동차 등의 차세대 동력원으로 주목을 받고 있다. 본 연구에서는 폴리에틸렌 분리막에 소량의 부기 화합물과 고분자를 코팅하여 제조된 표면 개질 분리막을 리튬이온폴리머전지에 적용함으로써 전지 특성을 향상시키고자 하였다. 불화 알루미늄과 아크릴로니트릴-메틸 메타크릴레이트 공중합체를 폴리에틸렌 지지체에 코팅하여 얻어진 표면 개질 분리막을 이용하여 제조된 리튬이온폴리머전지는 충 방전 싸이클 과정 중에 균일한 전도성 고체 전해질 계면이 전극 표면에 형성되어 낮은 계면 저항값을 보였으며, 이에 따라 불화 알루미늄을 포함하고 있지 않는 리튬이온폴리머전지와 비교하여 싸이클 특성과 고율 방전 특성이 크게 향상되었다. 표면 개질된 분리막을 이용하여 제조된 리튬이온폴리머전지를 0.5 C rate로 충 방전한 결과, 초기 방전용량 150 mAh/g을 나타내었으며, 300싸이클에서 133 mAh/g의 방전 용량을 유지하여 우수한 용량 보존특성을 나타내었다.

Embedding Cobalt Into ZIF-67 to Obtain Cobalt-Nanoporous Carbon Composites as Electrode Materials for Lithium ion Battery

  • Zheng, Guoxu;Yin, Jinghua;Guo, Ziqiang;Tian, Shiyi;Yang, Xu
    • Journal of Electrochemical Science and Technology
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    • 제12권4호
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    • pp.458-464
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    • 2021
  • Lithium ion batteries (LIBs) is a kind of rechargeable secondary battery, developed from lithium battery, lithium ions move between the positive and negative electrodes to realize the charging and discharging of external circuits. Zeolitic imidazolate frameworks (ZIFs) are porous crystalline materials in which organic imidazole esters are cross-linked to transition metals to form a framework structure. In this article, ZIF-67 is used as a sacrificial template to prepare nano porous carbon (NPC) coated cobalt nanoparticles. The final product Co/NPC composites with complete structure, regular morphology and uniform size were obtained by this method. The conductive network of cobalt and nitrogen doped carbon can shorten the lithium ion transport path and present high conductivity. In addition, amorphous carbon has more pores that can be fully in contact with the electrolyte during charging and discharging. At the same time, it also reduces the volume expansion during the cycle and slows down the rate of capacity attenuation caused by structure collapse. Co/NPC composites first discharge specific capacity up to 3115 mA h/g, under the current density of 200 mA/g, circular 200 reversible capacity as high as 751.1 mA h/g, and the excellent rate and resistance performance. The experimental results show that the Co/NPC composite material improves the electrical conductivity and electrochemical properties of the electrode. The cobalt based ZIF-67 as the precursor has opened the way for the design of highly performance electrodes for energy storage and electrochemical catalysis.

리튬의 제련기술 (Extractive Metallurgy of Lithium)

  • 손호상
    • 자원리싸이클링
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    • 제31권3호
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    • pp.3-15
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    • 2022
  • 리튬은 가장 가벼운 금속으로 주기율표상의 첫 번째 금속이다. 리튬은 유기 화합물부터 알루미늄이나 마그네슘의 합금원소는 물론 전자기기나 전기 자동차용 리튬이온 이차전지의 양극재 등 다양한 용도로 사용되고 있다. 따라서 리튬은 우리 일상생활에서 필수적인 금속이다. 전 세계 리튬의 사용량은 2000년도의 약 14,000 톤에서 2020년에는 약 82,200 톤으로 계속 증가하였다. 그러나 리튬은 지각 중 원소 존재도가 32 번째인 대표적인 희소금속이다. 본 연구에서는 생산량 및 용도와 리튬 제련기술에 대해 고찰하였다. 리튬은 자원이 종류에 따라 다양한 제련법으로 추출된다. 이러한 다양한 리튬의 제련기술은 리튬 2차 자원으로부터 리튬을 추출하는 새로운 재활용 프로세스의 개발에 필수적으로 필요하다.

리튬 이차전지용 고체전해질 개발 동향 (Research Trend of Solid Electrolyte for Lithium Rechargeable Batteries)

  • 서순성;이철우;김건
    • 전기화학회지
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    • 제15권1호
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    • pp.1-11
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    • 2012
  • 최근 리튬이차전지는 높은 에너지 밀도와 고용량화되어 급속도로 발전하고 있다. 그 중에서도 친환경 수송 장치의 전기자동차가 주목 받고 있는데 이를 위해서는 리튬이차전지의 많은 성능개선이 요구된다. 현재 리튬이차전지는 '하이브리드 전기자동차 (Hybrid Electric Vehicle, HEV)'에 실제 적용되고 있으며 이를 위해서 높은 용량, 긴 수명, 그리고 안전성 확보가 반드시 필요하다. 하지만현재 리튬이차전지에서 리튬이온의 이동을 위해 사용하는 유기전해액의 과열 및 과충전 상태에서 폭발의 위험성을 가지고 있기에 높은 안전성을 가진 고체전해질로의 대체가 시급하다. 따라서 본 연구에서는 리튬이차전지의 안정성 및 성능 개선을 위한 고체전해질의 연구 동향과 출원된 특허 및 논문에 대하여 논의하고자 한다.

Evaluations of Si based ternary anode materials by using RF/DC magnetron sputtering for lithium ion batteries

  • 황창묵;박종완
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2010년도 제39회 하계학술대회 초록집
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    • pp.302-303
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    • 2010
  • Generally, the high energy lithium ion batteries depend intimately on the high capacity of electrode materials. For anode materials, the capacity of commercial graphite is unlike to increase much further due to its lower theoretical capacity of 372 mAhg-1. To improve upon graphite-based negative electrode materials for Li-ion rechargeable batteries, alternative anode materials with higher capacity are needed. Therefore, some metal anodes with high theoretic capacity, such as Si, Sn, Ge, Al, and Sb have been studied extensively. This work focuses on ternary Si-M1-M2 composite system, where M1 is Ge that alloys with Li, which has good cyclability and high specific capacity and M2 is Mo that does not alloy with Li. The Si shows the highest gravimetric capacity (up to 4000mAhg-1 for Li21Si5). Although Si is the most promising of the next generation anodes, it undergoes a large volume change during lithium insertion and extraction. It results in pulverization of the Si and loss of electrical contact between the Si and the current collector during the lithiation and delithiation. Thus, its capacity fades rapidly during cycling. Si thin film is more resistant to fracture than bulk Si because the film is firmly attached to the substrate. Thus, Si film could achieve good cycleability as well as high capacity. To improve the cycle performance of Si, Suzuki et al. prepared two components active (Si)-active(Sn, like Ge) elements film by vacuum deposition, where Sn particles dispersed homogeneously in the Si matrix. This film showed excellent rate capability than pure Si thin film. In this work, second element, Ge shows also high capacity (about 2500mAhg-1 for Li21Ge5) and has good cyclability although it undergoes a large volume change likewise Si. But only Ge does not use the anode due to its costs. Therefore, the electrode should be consisted of moderately Ge contents. Third element, Mo is an element that does not alloys with Li such as Co, Cr, Fe, Mn, Ni, V, Zr. In our previous research work, we have fabricated Si-Mo (active-inactive elements) composite negative electrodes by using RF/DC magnetron sputtering method. The electrodes showed excellent cycle characteristics. The Mo-silicide (inert matrix) dispersed homogeneously in the Si matrix and prevents the active material from aggregating. However, the thicker film than $3\;{\mu}m$ with high Mo contents showed poor cycling performance, which was attributed to the internal stress related to thickness. In order to deal with the large volume expansion of Si anode, great efforts were paid on material design. One of the effective ways is to find suitably three-elements (Si-Ge-Mo) contents. In this study, the Si based composites of 45~65 Si at.% and 23~43 Ge at.%, and 12~32 Mo at.% are evaluated the electrochemical characteristics and cycle performances as an anode. Results from six different compositions of Si-Ge-Mo are presented compared to only the Si and Ge negative electrodes.

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바나듐 레독스 플로우 전지용 100kW급 계통연계형 PCS 개발 (Development of 100kW Grid-Connected PCS for Vanadium Redox flow Battery)

  • 최은식;이충우;류강열;강병관;오승훈;이윤재;고광수;김희중
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2013년도 추계학술대회 논문집
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    • pp.115-116
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    • 2013
  • Recently environmental problems such as greenhouse gas emissions has become a global problem. As a result, the current that can be easily used to Petroleum and coal reserves of fossil energy and environmental issues, coupled with the limitations of this finding for renewable energy to replace the movement is spreading around the world. Among them Energy Storage System with secondary battery technology has been increased interest in, Redox flow batteries, unlike the conventional theory, the life of the rechargeable battery almost no restrictions existing lithium-ion batteries 10 times more than the life of the road. In this paper, power plant or power system, installed in a building that can cope with the rapid increase in demand for power redox flow battery for 100kW PCS will be introduced.

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물을 용매로 이용한 Sol-Ge1법에 의한 $LiMn_2O_4$ 정극 활물질의 제조와 전기화학적 특성 (Preparation and electrochemical property of $LiMn_2O_4$cathode active material by Sol-Gel method using water as solvent)

  • 정인성;구할본;박계춘
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 1998년도 추계학술대회 논문집
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    • pp.175-178
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    • 1998
  • LiMn$_2$O$_4$-based spinels has been studied extensively as positive electrode materials for rechargeable lithium and lithium ion batteries. We describe here that LiMn$_2$O$_4$ cathode active materials is preparated by sol-gel process using water as solvent, which often yields inorganic oxides of excellent phase purity and well-controlled stoichiometry. Using this process, it has been possible to synthesize phase-pure crystalline spinel LiMn$_2$O$_4$ by calcining the appropriate precursors in air at 80$0^{\circ}C$ for several hours. The influence of different time have also been explored. LiMn$_2$O$_4$ preparated in the present study exhibit the single phase of cubic and active reaction at 400 ~ $600^{\circ}C$. Electrochemical studies show that the this method- synthesized materials appear to present reversible oxidation and reduction reactions at 3.0V ~ 4.5V and cycle stability during 50 cycle.

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Preparation of LiFe PO4 Using Chitosan and its Cathodic Properties for Rechargeable Li-ion Batteries

  • Hong, Kyong-Soo;Yu, Seong-Mi;Ha, Myoung-Gyu;Ahn, Chang-Won;Hong, Tae-Eun;Jin, Jong-Sung;Kim, Hyun-Gyu;Jeong, Euh-Duck;Kim, Yang-Soo;Kim, Hae-Jin;Doh, Chil-Hoon;Yang, Ho-Soon;Jung, Hee
    • Bulletin of the Korean Chemical Society
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    • 제30권8호
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    • pp.1719-1723
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    • 2009
  • The LiFeP$O_4$ powder was synthesized by using the solid state reaction method with Fe($C_2O_4){\cdot}2H_2O,\;(NH_4)_2HPO_4,\;Li_2CO_3$, and chitosan as a carbon precursor material for a cathode of a lithium-ion battery. The chitosan added LiFePO4 powder was calcined at 350 ${^{\circ}C}$ for 5 hours and then 800 ${^{\circ}C}$ for 12 hours for the calcination. Then we calcined again at 800 ${^{\circ}C}$ for 12 hours. We characterized the synthesized compounds via the crystallinity, the valence states of iron ions, and their shapes using TGA, XRD, SEM, TEM, and XPS. We found that the synthesized powders were carbon-coated using TEM images and the iron ion is substituted from 3+ to 2+ through XPS measurements. We observed voltage characteristics and initial charge-discharge characteristics according to the C rate in LiFeP$O_4$ batteries. The obtained initial specific capacity of the chitosan added LiFeP$O_4$ powder is 110 mAh/g, which is much larger than that of LiFeP$O_4$ only powder.

항로표지(등부표) 전원공급용 고성능 축전지 개발 (Development of High Performance Battery for Navigation Aid's Power)

  • 윤석준;조명훈;이대표
    • 한국항해항만학회:학술대회논문집
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    • 한국항해항만학회 2009년도 공동학술대회
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    • pp.435-438
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    • 2009
  • 항로표지용 등부표는 주요 항로 및 항만 입출항 선박 안전 유도를 위한 해상교통 안전 시설로서 현재는 해상교통환경 변화로 다기능이 요구되는 상황이다. 최근 고광도 등명기와 항로표지원격감시제어 및 e-Navigation 지원시스템구축과 해양기상관측장비 등을 구축함에 따라 항로표지용 등부표에 더욱 안정적인 전원 공급을 위한 고성능 축전지가 요구되고 있다. 본 연구에서는 리튬이차전지 중에서도 안전성이 우수한 리튬폴리머전지 설계기술을 적용, 기존 산화물계보다 안전성이 보다 더 우수한 $LiFePO_4$를 양극재료로 사용하여 단전지를 개발하고 단전지의 전기적 특성 고찰하였다. 또한 단전지를 이용한 3.6kWh급 축전지를 제작하여 그 성능을 연축전지와 비교 분석하였다.

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