• 제목/요약/키워드: P(VdF-co-HFP)

검색결과 18건 처리시간 0.018초

New Separators Based on Non-Polyolefin Polymers for Secondary Lithium Batteries

  • Seol, Wan-Ho;Lee, Yong-Min;Lee, Jun-Young;Han, Young-Dal;Ryu, Myung-Hyun;Park, Jung-Ki
    • 전기화학회지
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    • 제10권2호
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    • pp.82-87
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    • 2007
  • New porous separators based on non-polyolefin materials including the blend of poly (vinyl chloride) (PVC)/poly (vinylidene fluoride-co-hexafluoropropylene) (P(VdF-co-HFP)/poly(methyl methacrylate) (PMMA), and the porous separator based on poly (vinylidene fluoride) (PVdF) were prepared by phase inversion method. The porosity and morphology were controlled with phase inversion rate, which is governed by the relative content of non-solvent and solvent in coagulation bath. To enhance tensile strength, the solvent pre-evaporation and uni-axial stretching processes were applied. The ionic conductivity was increased with increasing stretching ratio, and tensile strength was increased with increasing solvent pre-evaporation time and stretching ratio. The 200% stretched PVdF separator showed 56 MPa of tensile strength, and the ionic conductivity of the stretched PVdF separator was $8.6{\times}10^{-4}\;S\;cm^{-1}\;at\;25^{\circ}C$.

폴리피롤 첨가에 의한 supercapacitor용 저 임피던스 전극 (Electrode of Low Impedance by Polypyrrole Addition for Supercapacitor)

  • 김경민;장인영;강안수
    • 대한안전경영과학회:학술대회논문집
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    • 대한안전경영과학회 2003년도 추계학술대회
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    • pp.343-350
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    • 2003
  • The best Ppy weight ratio was 7 wt% and the optimal electrode composition ratio was 78 : 17 : 5 wt.% of (MSP-20 : BP-20 =1 : 1), (Super P : Ppy =10 : 7) and P(VdF-co-HFP). Implantation of Ppy as the conducting agents have led to superior electrochemical characteristics because of the low of internal resistance and faradaic capacitance. The result of unit cell with Ppy 7 wt% were as follows: 28.02 Fig of specific capacitance, 1.34 Ω of DC-ESR and 0.36 Ω of AC-ESR. Unit cell showed a good stability up to 200 charge-discharge cycles, retaining 82% of their original capacity at 200 cycles. From the analysis of impedance, the electrodes with Ppy 7 wt% showed low ESR, low charge transfer resistance and quick reaction rate. It was inferred that quick charge-discharge was possible. As compared with the specific capacitance (rectangular shape) of CV, it was also concluded that the specific capacitance originated from thecompound phenomena of the faradaic capacitance by oxidation and reduction of Ppy and the non-faradaic capacitance by adsorption-desorption of activated carbon.

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$SiO_2$가 유리섬유로 보강된 고분자 겔 전해질의 전기 화학적 특성에 미치는 영향 ([ $SiO_2$ ] Effect on the Electrochemical Properties of Polymeric Gel Electrolytes Reinforced with Glass Fiber Cloth)

  • 박호철;김상헌;전종한;김동원;고장면
    • 전기화학회지
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    • 제4권1호
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    • pp.6-9
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    • 2001
  • 유리섬유(glass fiber cloth, GFC)가 보강제로 사용된 고분자 겔 전해질(polymeric gel electrolytes, PGEs)에 $SiO_2$를 첨가하여 전해질의 전기 화학적 특성을 조사하였다. 가소제로는 Ethylene carbonate(EC) , propylene carbonate(PC), diethyl carbonate(DEC)를, 리튬염으로는 $LiClO_4$를 고분자로는 polyacrylronitrile(PAN)과 poly(vinylidene fluoride-co-hexafluoro propylene)(P(VdF-co-HFP))을 사용하여 $80\~90{\mu}m$의 두께로 전해질을 제조하였다. 제조된 전해질은 모두 상온체서 $10^{-3}S/cm$의 이온 전도도를 나타내었고, 4.8V까지 안정하였다. 리튬금속을 사용하여 제조된 셀의 임피던스 결과에서는 시간이 지남에 따라 모든 전해질이 부동태 피막의 성장으로 계면저항이 증가했으나, $SiO_2$첨가비율에 따라 뚜렷한 차이는 보이지 않았다. $LiClO_2$와 mesophase pitch-based carbon fiber(MCF)를 각각 양극과 음극으로 사용하여 제조된 겔의 임피던스에서는 $SiO_2$가 첨가되지 않은 셀의 옴 저항이 충전, 방전이 진행되는 동안 많은 변화를 보였으며, $SiO_2$가 첨가된 셀의 저항은 거의 변화되지 않았고, 계면의 변화도 적었다. 또한 방전용량에서도 $SiO_2$$20\%$가 첨가된 전해질이 0.2C의 방전속도에132mAh/g의 비 용량을 나타내었고, 2C의 방전속도에서$85\%$의 방전용량을 유지하였다.

EDLC용 폴리머 겔 전해질 (Polymer Gel Electrolytes for EDLCs)

  • 정세일;정현철;강안수
    • 대한안전경영과학회:학술대회논문집
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    • 대한안전경영과학회 2003년도 추계학술대회
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    • pp.351-357
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    • 2003
  • The optimum polymer gel electrolyte composition ratio was 23 : 66 : 11 wt% of P(VdF-co-HFP) : PVP =20 : 3), (PC: EC =44 : 22) and TEABF$_4$. And the optimal thickness of polymer gel electrolyte was 50 ${\mu}{\textrm}{m}$. The electrochemical characteristics result of unit cell were 31.41 Fig of specific capacitance, and 3.21$\times$10$^{-3}$ S/cm of ion conductivity. Ion conductivity of polymer gel electrolytes decreased according to added PVP through impedance analysis, and it was higher in 7 wt%, but electrochemical characteristics of unit cell were better in 3 wt% PVP. And for excellent ion conductivity of polymer gel electrolytes, the use of a thin layer electrolyte(20 $\mu\textrm{m}$) was an effective method, but with unit cell application, the best thickness was 50 $\mu\textrm{m}$. Unit cell showed higher capacitance and more stable electrochemical performance when hot pressed between polymer gel electrolyte and electrode. This results from enhancement of the physical contact between the electrode and the polymer gel electrolyte and good accessibility of the liquid electrolyte to the electrode surface.

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각형 전기이중층 커패시터의 산업 안전성 (Industry safety characteristic of Prismatic EDLCs)

  • 김경민;장인영;강안수
    • 대한안전경영과학회:학술대회논문집
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    • 대한안전경영과학회 2004년도 춘계학술대회
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    • pp.247-257
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    • 2004
  • Electrodes were fabricated based on activated carbon powder BP-20, conducting agent such as Super P, vapor grown carbon fiber (VGCF) and acetylene black (AB), and the mixed binders of flexible poly(vinylidenefluoridehexafluoropropylene) [P(VdF-co-HFP)] and cross linking dispersion agent of polyvinylpyrrolidone (PVP) to increase mechanical strength. According to impedance measurement of the electrode with the addition of conducting agent, we found that it was possible to charge rapidly by the fast steady-state current convergence due to low equivalent series resistance (AC-ESR, fast charge transfer rate at interface between electrode and electrolyte and low RC time constant. The self-discharge of unit cell showed that diffusion process was controlled by the ion concentration difference of initial electrolyte due to the characteristics of Electric Double Layer Capacitor (EDLC) charged by ion adsorption in the beginning, but this by current leakage through the double-layer at the electrode/electrolyte interface had a minor effect and voltages of curves were remained constant regardless of electrode material. We found that the 2.3V/230F grade EDLC would be applied to industrial safety usage such as uninterrupted power supply (UPS) because of the constant DC-ESR by IR drop regardless of discharge current.

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Enhancement of the Ionic Conductivity and Mechanical Strength of Micro-porous Separator by Uni-axial Drawing

  • Lee Je-An;Seol Wan-Ho;Lee Yong-Min;Park Jung-Ki
    • 전기화학회지
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    • 제9권1호
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    • pp.29-33
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    • 2006
  • A new porous separator based on poly(vinyl chloride) (PVC)/poly(vinylidene fluoride-co-hexafluoro-propylene) (P(VdF-co-HFP)/poly(methyl methacrylate) (PMMA) was prepared by a phase inversion method. To enhance mechanical property, the membrane was stretched uniaxially at high temperature. Tensile strength and ionic conductivity were measured for various draw ratios. The tensile strength and ionic conductivity were increased with increasing draw ratio. The tensile strength of the separator reached 52MPa after stretching to draw ratio of 5, and the ionic conductivity of the separator was increased from $1.9Xs10^{-4}S/cm\;to\;4.6X10^{-4}S/cm\;at\;25^{\circ}C$. The stretched separator immersed in liquid electrolyte was electrochemically stable up to 4.7 V. The cell based on the stretched separator was maintained at about 99% of the initial discharge capacity after 10th cycle operation at 0.2C rate.

PVdF계 미세기공 고분자 전해질의 전기화학적 특성 (Electrochemical Characteristics of Microporous Polymer Electrolytes Based on Poly(vinylidene-co-hexafluoropropylene))

  • 정강국;김종욱;안주현;김기원;안효준
    • 전기화학회지
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    • 제7권4호
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    • pp.183-188
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    • 2004
  • 리튬 설퍼전지용 고분자 전해질을 개발하기 위해 상전이 방법으로 미세기공 P(VdF-HFP) 고분자 필름을 제조하였다. 미세기공 고분자 전해질은 NMP추출에 사용되는 증류수와 메탄올의 혼합 농도를 조절함으로써 고분자 필름 내부의 기공 구조 형성을 제어할 수 있었다. $80\%$ 메탄올로 제조한 미세기공 고분자 필름에 1M $LiCF_3SO_3-TEGDME/EC$의 액체 전해질을 함침시켜 제조한 고분자 전해질이 가장 높은 이온 전도도를 나타냈으며 리튬 이차전지에 사용 가능한 $2\times10^{-3}S/cm$의 이온전도도를 나타내었다. 또한 고분자 필름의 기공도가 균일하고 저장 시간에 따른 이온전도도 감소도 적었으며, 리튬 전극과의 계면저항도 가장 낮게 나타났다. 리튬염에 따른 이온전도도를 측정한 결과 $LiPF_6$를 사용한 고분자 전해질이 상온에서 $3.3\times10^{-3}S/cm$로 나타났다.

유리섬유 cloth가 보강된 겔상의 고분자 필름을 전해질로 이용한 리튬이온 전지의 특성 (Characteristics of Li-ion battery using polymeric gel electrolytes reinforced with glass fiber cloth)

  • 박호철;김상헌;전종한;고장면;조수익;손헌준
    • 전기화학회지
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    • 제3권2호
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    • pp.100-103
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    • 2000
  • 유리섬유(glass fiber cloth, GFC)가 보강된 겔상의 고분자 필름을 전해질로 이용하여 박형 리튬이온 전지를 제조하여 충방전 특성을 조사하였다. 고분자 전해질은 polyacrylronitrile(PAN), poly(vinylidenefluoride-co-hexafluoropropylene)(PVdF), ethylene carbonate(EC), propylene carbonate(PC), diethyl carbonate(DEC), Licla을 혼합하여 제조한 점성 유체를 $38{\mu}m$두께의 GFC에 함침시켜 고분자 겔 상의 필름을 제조하였다. 전지는 $LiCoO_2$와 mesophase pich-based carbon fiber(MCF)를 양극과 음극으로 각각 사용하여 제조하였다. 충방전시험은 0.2C에서 양극질량 기준으로 110mAh/g의 용량을 나타내었으며, 2.9-4.1V영역에서 400 cycle까지 초기용량의 $80\%$이상을 유지하였다. 이러한 결과는 GFC가 기계적 강도가 빈약한 고분자겔의 보강제로서 기계적 물성을 향상시킬 뿐 아니라 고분자 겔의 점탄성에 기인한 creep현상을 억제하여 고분자 겔 필름의 치수를 일정하게 유지시켜주어 전해질의 저항변화를 최소화시키고 전극간의 단락을 효과적으로 방지하는 것으로 추론할 수 있다.