• Title/Summary/Keyword: organic electrolytes

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Characterization of Porous Poly(vinylidene fluoride)/Poly(ethylene carbonate) Membranes for Polymer Electrolytes of Lithium Secondary Batteries (리튬 이차전지 고분자 전해질용 다공성 Poly(vinylidene fluoride)/Poly(ethylene carbonate) 막의 특성 연구)

  • Jeon, Jae-Deok;Kwak, Seung-Yeop
    • Proceedings of the Membrane Society of Korea Conference
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    • 2004.05b
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    • pp.69-72
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    • 2004
  • So far the most practical polymer electrolytes are gel systems, which contain a polymeric matrix, a lithium salt, and aprotic organic solvents. This has met with success but has had disadvantages that the addition of solvents promotes deterioration of the electrolyte's mechanical properties and increases its reactivity towards the lithium metal anode.[1](omitted)

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Electrodeposition from Non-Aqueous Electrolytes (비수용액성 전해액에서의 전기도금)

  • Brooman, Eric W.
    • Journal of the Korean institute of surface engineering
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    • v.24 no.3
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    • pp.169-176
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    • 1991
  • The pros and cons of deposition metals, alloys and compounds from organic, inorganic and molten salt non-aqueous plating baths are discussed. Although some metals, alloys and compounds not obtainable otherwise can be deposited, few commercial processes exist. Widespread use is limited by the cost, complexity, and hazards associated with non-aqueous electrolytes, coupled with the relatively small markets for many of these coatings.

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Polymeric Gel Electrolytes for Electric Double Layer Capacitors (전기이중층 캐패시터에 관한 폴리머 겔 전해액)

  • Morita, Masayuki;Qiao, Jin-Li
    • Journal of the Korean Electrochemical Society
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    • v.6 no.2
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    • pp.141-144
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    • 2003
  • Proton conducting polymeric gels as the electrolytes of electrochemical capacitors have been prepared by two different methods: 1) swelling a polymethacrylate-based polymer matrix in aqueous solutions of inorganic and organic acids, and 2) polymerizing complexes of anhydrous acids and prepolymers with organic plasticizer. The FT-IR spectra strongly suggest that the carbonyl groups in the polymer matrix interact with protons from the doped acids. High ionic (proton) conductivity in the range of $6\times10^{-4}-4\times10^{-2}\;S\;cm^{-1}$ was obtained at room temperature for the aqueous gels. The non-aqueous polymer complexes showed rather low ionic conductivity, but it was about $10^{-3}\;S\;cm^{-1}\;at\;70^{\circ}C$ for the $H_3PO_4$ doped polymer electrolyte. The mechanisms of ion (proton) conduction in the polymeric systems are discussed.

Study on the Cycling Performances of Lithium-Ion Polymer Cells Containing Polymerizable Additives

  • Kim, Dong-Won
    • Bulletin of the Korean Chemical Society
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    • v.30 no.2
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    • pp.319-322
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    • 2009
  • Gel polymer electrolytes were prepared by immersing a porous poly(vinylidene fluoride-co-hexafluoropropylene) membrane in an electrolyte solution containing small amounts of polymerizable additive (3,4-ethylenedioxythiophene, thiophene, biphenyl). The organic additives were electrochemically oxidized to form conductive polymer films on the electrode at high potential. With the gel polymer electrolytes containing different organic additive, lithium-ion polymer cells composed of carbon anode and LiCo$O_2$ cathode were assembled and their cycling performances were evaluated. Adding small amounts of thiophene or 3,4-ethylenedioxythiophene to the gel polymer electrolyte was found to reduce the charge transfer resistance in the cell and it thus exhibited less capacity fading and better high rate performance.

Dye Sensitized Solar Cell using Polymer Electrolytes based on Poly(ethylene oxide) with an Ionic Liquid

  • Singh Pramod K.;Kim, Ki-Il;Rhee Hee-Woo
    • Proceedings of the Polymer Society of Korea Conference
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    • 2006.10a
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    • pp.273-273
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    • 2006
  • The encapsulation of volatile organic electrolytes is a major challenge in practical applications of the DSSC. Ionic liquid (IL) within polymer electrolytes is an attractive candidate for replacement. Here we used a low viscosity ionic liquid 1-ethyl 3-methylimidazolium thiocyanate in order to modify ionic conductivity (${\sigma}$) of polymer electrolyte ($PEO:Kl/l_{2}$) and hence DSSC efficiency. The doping of IL enhanced ${\sigma}$ and attained maximum (${\sigma}=7.62{\times}10^{-4}S/cm$) at 80 wt% of IL concentration. Beyond this it was harder to get stable films. XRD confirmed that the intensity of the sharp PEO crystalline peaks decreased when IL was added. The DSC studies confirmed the reduction in crystallinity by adding ionic liquid.The efficiency of solar cell using aforesaid material was 0.6 % at 1 sun irradiation.

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Magnetic Properties of Thin Cu/Co Multilayers Made by Electrodeposition

  • Lee, Jung-Ju;Lee, Jin-Han;Hong, Kim-In
    • Journal of Magnetics
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    • v.10 no.3
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    • pp.118-121
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    • 2005
  • We have investigated the magnetic properties of electroplated thin Cu/Co multilayers by using electrolytes made of copper sulphate and cobalt sulphate and by applying alternating plating voltage. While the multilayers plated with pure electrolyte showed superparamagnetism, those plated with organic additives showed ferromagnetic behavior. These changes are attributed to the so-called 'self-annealing' effect and reduction of grain size caused by the organic additives.

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

  • Kim, K.M.;Oh, J.M.;Shin, D.O.;Kim, J.Y.;Lee, Y.G.
    • Electronics and Telecommunications Trends
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    • v.36 no.3
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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.