• 제목/요약/키워드: Lithium sulfur secondary batteries

검색결과 8건 처리시간 0.021초

Lithium/Sulfur Secondary Batteries: A Review

  • Zhao, Xiaohui;Cheruvally, Gouri;Kim, Changhyeon;Cho, Kwon-Koo;Ahn, Hyo-Jun;Kim, Ki-Won;Ahn, Jou-Hyeon
    • Journal of Electrochemical Science and Technology
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    • 제7권2호
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    • pp.97-114
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    • 2016
  • Lithium batteries based on elemental sulfur as the cathode-active material capture great attraction due to the high theoretical capacity, easy availability, low cost and non-toxicity of sulfur. Although lithium/sulfur (Li/S) primary cells were known much earlier, the interest in developing Li/S secondary batteries that can deliver high energy and high power was actively pursued since early 1990’s. A lot of technical challenges including the low conductivity of sulfur, dissolution of sulfur-reduction products in the electrolyte leading to their migration away from the cathode, and deposition of solid reaction products on cathode matrix had to be tackled to realize a high and stable performance from rechargeable Li/S cells. This article presents briefly an overview of the studies pertaining to the different aspects of Li/S batteries including those that deal with the sulfur electrode, electrolytes, lithium anode and configuration of the batteries.

리튬 이차전지 기술 동향 (Technology Trends for Lithium Secondary Batteries)

  • 최윤호;정형석
    • 전자통신동향분석
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    • 제38권5호
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    • pp.90-99
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    • 2023
  • Recently, with the trend of information technology convergence and electrification, batteries are being widely used in fields such as industry, transportation, and specific applications. By 2030, the secondary battery market is expected to grow explosively by more than eight times compared with 2020 to $351.7 billion owing to the expanding adoption of electric vehicles. Depending on the electrochemical reactions in the electrode, a primary battery can only discharge through an irreversible reaction, while a secondary battery can be repeatedly charged and discharged using reversible reactions. According to the type of charge carrier ions, secondary batteries may be classified into those made of lithium, sodium, potassium, magnesium, and aluminum ions. We analyze the current status and technological issues of lithium-ion batteries, lithium-sulfur batteries, and solid-state batteries, which are representative examples of lithium secondary batteries. In addition, research trends in lithium secondary batteries are discussed.

차세대 리튬이차전지용 고체 전해질 기술 (Solid Electrolyte Technologies for Next-Generation Lithium Secondary Batteries)

  • 김광만;오지민;신동옥;김주영;이영기
    • 전자통신동향분석
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    • 제36권3호
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    • pp.76-86
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    • 2021
  • Technologies for lithium secondary batteries are now increasingly expanding to simultaneously improve the safety and higher energy and power densities of large-scale battery systems, such as electric vehicles and smart-grid energy storage systems. Next-generation lithium batteries, such as lithium-sulfur (Li-S) and lithium-air (Li-O2) batteries by adopting solid electrolytes and lithium metal anode, can be a solution for the requirements. In this analysis of battery technology trends, solid electrolytes, including polymer (organic), inorganic (oxides and sulfides), and their hybrid (composite) are focused to describe the electrochemical performance achievable by adopting optimal components and discussing the interfacial behaviors that occurred by the contact of different ingredients for safe and high-energy lithium secondary battery systems. As next-generation rechargeable lithium batteries, Li-S and Li-O2 battery systems are briefly discussed coupling with the possible use of solid electrolytes. In addition, Electronics and Telecommunications Research Institutes achievements in the field of solid electrolytes for lithium rechargeable batteries are finally introduced.

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

  • 유호석;김인수;박진수
    • 한국수소및신에너지학회논문집
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    • 제27권6호
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    • pp.753-763
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    • 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.

전기차와 ESS용 이차전지 시장의 현재와 미래에 대한 기술경제적 분석 (Techno-economic Analysis on the Present and Future of Secondary Battery Market for Electric Vehicles and ESS)

  • 이정승;김수경
    • Journal of Information Technology Applications and Management
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    • 제30권1호
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    • pp.1-9
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    • 2023
  • Interest in the future of the battery market is growing as Tesla announces plans to increase production of electric vehicles and to produce batteries. Tesla announced an action plan to reduce battery prices by 56% through 'Battery Day', which included expansion of factories to internalize batteries and improvement of materials and production technology. In the trend of automobile electrification, the expansion of the battery market, which accounts for 40% of the cost of electric vehicles, is inevitable, and the size of the electric vehicle battery market in 2026 is expected to increase more than five times compared to 2016. With the development of materials and process technology, the energy density of electric vehicle batteries is increasing while the price is decreasing. Soon, electric vehicles and internal combustion locomotives are expected to compete on the same line. Recently, the mileage of electric vehicles is approaching that of an internal combustion locomotive due to the installation of high-capacity batteries. In the EV battery market, Korean, Chinese and Japanese companies are fiercely competing. Based on market share in the first half of 2020, LG Chem, CATL, and Panasonic are leading the EV battery supply, and the top 10 companies included 3 Korean companies, 5 Chinese companies, and 2 Japanese companies. All-solid, lithium-sulfur, sodium-ion, and lithium air batteries are being discussed as the next-generation batteries after lithium-ion, among which all-solid-state batteries are the most active. All-solid-state batteries can dramatically improve stability and charging speed by using a solid electrolyte, and are excellent in terms of technology readiness level (TRL) among various technology alternatives. In order to increase the competitiveness of the battery industry in the future, efforts to increase the productivity and economy of electric vehicle batteries are also required along with the development of next-generation battery technology.

리튬-황 이차전지 양극 조성 성분의 비율이 전지 성능에 미치는 영향에 관한 연구 (Effect of Cathodes Prepared with Different Compositions on the Performace of Li-Sulfur Secondary Battery)

  • 최윤정;주재백;조원일
    • 전기화학회지
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    • 제21권1호
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    • pp.6-11
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    • 2018
  • 다양한 전자제품에서 높은 성능의 이차 전지가 요구됨에 따라 안전하고 친환경적이며 경제적인 이차 전지 전극 재료의 개발을 필요로 하고 있다. 리튬-황 배터리는 높은 이론용량과 에너지밀도, 그리고 친환경적인 물질이라는 점에서 차세대 이차전지로써 주목받고 있지만, 폴리설파이드의 용출로 인한 전지 용량감소현상이 일어나고, 황의 부도체 특성으로 인해 아직 상용화 단계에 미치지 못하고 있다. 본 연구에서는 보다 향상된 이차 전지 전극 재료로서 다른 양극 물질들에 비해 에너지 밀도가 높은 황을 양극재로 사용하여 전지를 만들고 이 때 양극 활물질의 구성요소인 황, 도전재, 바인더의 비율을 다양하게 변화하면서 양극을 제조하고 여러 전기화학적 평가를 거쳐 가장 좋은 전지 성능을 낼 수 있는 구성성분 비율을 모색하고자 하였다.

리튬이온 배터리용 정극재료(正極材料)의 기술동향(技術動向) (Technology Trends of Cathode Active Materials for Lithium Ion Battery)

  • 황용길;길상철;김종헌
    • 자원리싸이클링
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    • 제21권5호
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    • pp.79-87
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    • 2012
  • 리튬이온전지의 대형화와 범용화에 따라 경제성과 안정성 관점에서 정극재료의 개발은 중요한 과제로 대두되고 있다. 18650 원통형 전지의 에너지 밀도는 발매 초기인 1991년 230Wh/l에서 2005년 2배 이상의 500Wh/l로 증가하였으며, 제품 대부분의 에너지용량은 450~500 Wh/l, 150~190Wh/kg이고 안전성, 제조비 절감 및 장 수명을 중점적으로 개발하고 있다. $LiCoO_2$ 정극활물질 중의 Co가 고가이므로 Co 사용량을 줄이면서 에너지 용량을 향상시키기 위하여 $LiMn_2O_4$, $LiCo_{1/3}N_{i1/3}Mn_{1/3}O_2$, $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2$, $LiFePO_4$-C복합체 (167 mA/g)등이 개발되고 있다. 전동자전거용 전지는 출력밀도 500 Wh/kg, 전동공구용 1,500Wh/kg, EV나 PHEV용으로는 4,000~5,000Wh/kg의 대용량 출력밀도를 요구하고 있으므로 배터리 소재의 성능을 향상시키려고 많은 연구가 진행되고 있다. 최근 Graphene-sulfur 복합체정극활물질 600 Ah/kg, 2차전지용 분자클러스터(molecular cluster) 320 Ah/kg 등의 새로운 정극활물질이 연구 개발되고 있으므로 실용화가 기대된다.