• 제목/요약/키워드: Aqueous rechargeable lithium battery

검색결과 5건 처리시간 0.015초

Electrochemical Performance of AlF3-Coated LiV3O8 for Aqueous Rechargeable Lithium Ion Batteries

  • Tron, Artur;Kang, Hyunchul;Kim, Jinho;Mun, Junyoung
    • Journal of Electrochemical Science and Technology
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    • 제9권1호
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    • pp.60-68
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    • 2018
  • In aqueous rechargeable lithium ion batteries, $LiV_3O_8$ exhibits obviously enhanced electrochemical performance after $AlF_3$ surface modification owing to improved surface stability to fragile aqueous electrolyte. The cycle life of $LiV_3O_8$ is significantly enhanced by the presence of an $AlF_3$ coating at an optimal content of 1 wt.%. The results of powder X-ray diffraction, energy dispersive X-ray spectroscopy, X-ray photoelectron spectroscopy, inductively coupled plasma-optical emission spectrometry, and galvanostatic charge-discharge measurements confirm that the electrochemical improvement can be attributed mainly to the presence of $AlF_3$ on the surface of $LiV_3O_8$. Furthermore, the $AlF_3$ coating significantly reduces vanadium ion dissolution and surface failure by stabilizing the surface of the $LiV_3O_8$ in an aqueous electrolyte solution. The results suggest that the $AlF_3$ coating can prevent the formation of unfavorable side reaction components and facilitate lithium ion diffusion, leading to reduced surface resistance and improved surface stability compared to bare $LiV_3O_8$ and affording enhanced electrochemical performance in aqueous electrolyte solutions.

Development of LiFePO4/FePO4 Electrode for Electro-Osmotic Pump using Li+ Migration

  • Baek, Jaewook;Kim, Kyeonghyeon;Shin, Woonsup
    • Journal of Electrochemical Science and Technology
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    • 제9권2호
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    • pp.85-92
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    • 2018
  • Olivine structure of $LiFePO_4$ (LFP) is one of the most commonly used materials in aqueous rechargeable lithium batteries (ARLBs), and can store and release charge through the insertion/de-insertion of $Li^+$ between LFP and FP. We have fabricated LFP and LFP/FP electrodes on titanium paper and studied their electrochemical properties in 2 M $Li_2SO_4$. The LFP/FP electrode was determined to be a suitable electrode for electo-ostmotic pump (EOP) in terms of efficiency in water and 0.5 mM $Li_2SO_4$ solution. Experiments to determine the effect of cations and anions on the performance of EOP using LFP/FP electrode have shown that $Li^+$ is the best cation and that the anion does not significantly affect the performance of the EOP. As the concentration of $Li_2SO_4$ solution was increased, the current increased. The flow rate peaked at $4.8{\mu}L/30s$ in 1.0 mM $Li_2SO_4$ solution and then decreased. When the EOP was tested continuously in 1.0 mM $Li_2SO_4$ solution, the EOP transported approximately 35 mL of fluid while maintaining a stable flow rate and current for 144 h.

A Mini-Review on Non-Aqueous Lithium-Oxygen Batteries - Electrochemistry and Cathode Materials

  • Riaz, Ahmer;Jung, Kyu-Nam;Lee, Jong-Won
    • Journal of Electrochemical Science and Technology
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    • 제6권2호
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    • pp.50-58
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    • 2015
  • There is a great deal of current interest in the development of rechargeable batteries with high energy storage capability due to an increasing demand for electric vehicles (EVs) with driving ranges comparable to those of gasoline-powered vehicles. Among various types of batteries under development, a Li-O2 battery delivers the highest theoretical energy density; thus, it is considered a promising energy storage technology for EV applications. Despite the fact that extensive research efforts have been made in the field of Li-O2 batteries in recent years, there are still many technical challenges to be addressed, such as low round-trip efficiency, poor reversibility, and poor power capability. In this article, we provide a short review on the fundamental electrochemistry of Li-O2 batteries with non-aqueous electrolytes and on electrode materials that have been employed in cathodes (oxygen electrodes). The major aim of this mini-review is to highlight the physical and electrochemical origins of scientific challenges facing Li-O2 battery technology and to overview the strategies proposed to overcome them.

Cathodic Properties of $LiCoO_2$ Synthesized by a Sol-Gel Method for Lithium Ion Battery

  • 조봉준;정의덕;심윤보
    • Bulletin of the Korean Chemical Society
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    • 제19권1호
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    • pp.39-44
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    • 1998
  • $LiCoO_2$ powder was synthesized in an aqueous solution by a sol-gel method and used as a cathode active material for a lithium ion rechargeable battery. The layered $LiCoO_2$ powders were prepared by igniting in air for 12 hrs at 600 ℃ $(600-LiCoO_2)$ and 850 ℃ $(850-LiCoO_2)$. The structure of the $LiCoO_2$ powder was assigned to the space group R bar 3 m (lattice parameters a=2.814 Å and c=14.04Å). The SEM pictures of $600-LiCoO_2$ revealed homogeneous and fine particles of about 1 μm in diameter. Cyclic voltammograms (CVs) of $600-LiCoO_2$ electrode displayed a set of redox peaks at 3.80/4.05 V due to the intercalation/deintercalation of the lithium ions into/out of the $LiCoO_2$ structure. CVs for the $850-LiCoO_2$ electrode had a major set of redox peaks at 3.88/4.13 V, and two small set of redox peaks at 4.18/4.42 V and 4.05/4.25 V due to phase transitions. The initial charge-discharge capacity was 156-132 mAh/g for the $600-LiCoO_2$ electrode and 158-131 mAh/g for the $850-LiCoO_2$ electrode at the current density of 0.2 mA/cm2. The cycleability of the cell consisting of the $600-LiCoO_2$ electrode was better than that of the $850-LiCoO_2$. The diffusion coefficient of the $Li^+$ ion in the $600-LiCoO_2$ electrode was calculated as $4.6{\times}10^{-8}\; cm^2/sec$.

유기용매 전해조를 이용한 리튬이차박막전지용 Sn 음극의 제조 (Preparation and Characterization of a Sn-Anode Fabricated by Organic-Electroplating for Rechargeable Thin-Film Batteries)

  • 김동훈;도칠훈;이정훈;이덕준;하경화;진봉수;김현수;문성인;황영기
    • 전기화학회지
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    • 제11권4호
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    • pp.284-288
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    • 2008
  • 박막 리튬이차전지의 고용량 음극을 개발하기 위하여, Sn(II) 아세테이트를 포함한 유기전해조 도금법을 이용하여 Sn 박막전극을 제조하였다. $Li^+$$Sn^{2+}$를 포함한 전해조에 대한 순환전위전류시험 결과 3종류의 환원 반응이 나타났으며, $2.0{\sim}2.5\;V$ 영역이 Ni 집전체 표면에 대한 Sn의 석출 반응에 해당한다. 수계전해액에 대한 $Sn^{2+}$의 표준환원전위는 2.91 V vs. $Li^+/Li^{\circ}$ 인데 반해 유기전해조에서는 보다 낮은 전위에서 환원반응이 일어났다. 이는 유기전해질의 고저항과 $Sn^{2+}$의 낮은 농도에 기인한 과전위의 결과로 생각된다. 제조한 전극의 물리적 특성 및 전기화학적 특성을 연구하였다. 석출한 Sn 전극을 $150^{\circ}C$로 열처리하여 보다 높은 결정성을 얻을 수 있었고, 이를 Sn/Li 전지로 구성하여 전기화학적 실험을 한 결과 0.25 V와 0.75 V에서 각각 합금화-탈합금화 과정을 확인 할 수 있었다. 제조한 전극의 두께를 전기량을 통하여 계산한 바 $7.35{\mu}m$였으며, 가역용량은 $400{\mu}Ah/cm^2$을 얻었다.