• 제목/요약/키워드: Composite Electrolyte

검색결과 315건 처리시간 0.027초

An Investigation of Interfacial Strength in Epoxy-based Solid Polymer Electrolytes for Structural Composite Batteries

  • Mohamad A. Raja;Su Hyun Lim;Doyun Jeon;Hyunsoo Hong;Inyeong Yang;Sanha Kim;Seong Su Kim
    • Composites Research
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    • 제36권6호
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    • pp.416-421
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    • 2023
  • Multifunctional composite materials capable of both load-carrying and energy functions are promising innovative candidates for the advancement of contemporary technologies owing to their relative feasibility, cost-effectiveness, and optimized performance. Carbon fiber (CF)-based structural batteries utilize the graphitic inherent structure to enable the employment of carbon fibers as electrodes, current collectors, and reinforcement, while the matrix system is an ion-conduction and load transfer medium. Although it is possible to enhance performance through the modification of constituents, there remains a need for a systematic design methodology scheme to streamline the commercialization of structural batteries. In this work, a bi-phasic epoxy-based ionic liquid (IL) modified structural battery electrolyte (SBE) was developed via thermally initiated phase separation. The polymer's morphological, mechanical, and electrochemical characteristics were studied. In addition, the interfacial shear strength (IFSS) between CF/SBE was investigated via microdroplet tests. The results accentuated the significance of considering IFSS and matrix plasticity in designing composite structural batteries. This approach is expected to lay the foundation for realizing smart structures with optimized performance while minimizing the need for extensive trial and error, by paving the way for a streamlined computational design scheme in the future.

비스페닐프로판 단위를 갖는 연료전지전해질용 블록공중합체/나노실리카 복합막 제조 및 특성 (Preparation and Characterization of Block Copolymer Containing Bisphenyl Propane Unit and Nanosilica Composite Membrane for Fuel Cell Electrolyte Application)

  • 김애란
    • 한국수소및신에너지학회논문집
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    • 제28권2호
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    • pp.144-149
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    • 2017
  • A proton-conducting bisphenylpropaned sulfonated fluorinated blockcopolymer (BPSFBC) was synthesized. Five kinds of polymer electrolyted composite membranes were preparated by incorporating silica ($SiO_2$) with various weight ratio. And their characteristics were investigated by FT-IR (fourier transform infrared), $^1H-NMR$ ($^1H$ nuclear magnetic resonance), TGA (thermogravimetric analysis), water uptake, FE-SEM (field emission scanning electron microscopes), and ion conductivity properties. The water uptake and ion conductivity were increased until 9 wt% $SiO_2$, and then decreased. The maximum proton conductivity equal to $52mScm^{-1}$ was measured for the BPSFBC/$SiO_2$-9 composite membrane at $90^{\circ}C$ and 100% relative humidity. From the measured results, it is distinct that the manufactured composite membrane BPSFBC/$SiO_2$-9 can be considered as a polymer membrane suitable for a fuel cell electrolyte.

Effects of binary conductive additives on electrochemical performance of a sheet-type composite cathode with different weight ratios of LiNi0.6Co0.2Mn0.2O2 in all-solid-state lithium batteries

  • Ann, Jiu;Choi, Sunho;Do, Jiyae;Lim, Seungwoo;Shin, Dongwook
    • Journal of Ceramic Processing Research
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    • 제19권5호
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    • pp.413-418
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    • 2018
  • All-solid-state lithium batteries (ASSBs) using inorganic sulfide-based solid electrolytes are considered prospective alternatives to existing liquid electrolyte-based batteries owing to benefits such as non-flammability. However, it is difficult to form a favorable solid-solid interface among electrode constituents because all the constituents are solid particles. It is important to form an effective electron conduction network in composite cathode while increasing utilization of active materials and not blocking the lithium ion path, resulting in excellent cell performance. In this study, a mixture of fibrous VGCF and spherical nano-sized Super P was used to improve rate performance by fabricating valid conduction paths in composite cathodes. Then, composite cathodes of ASSBs containing 70% and 80% active materials ($LiNi_{0.6}Co_{0.2}Mn_{0.2}O_2$) were prepared by a solution-based process to achieve uniform dispersion of the electrode components in the slurry. We investigated the influence of binary carbon additives in the cathode of all-solid-state batteries to improve rate performance by constructing an effective electron conduction network.

리튬 이온 폴리머 전지용 고용량 LiMnO2-organic Composite 정극의 전기화학적 특성 (Electrochemical Properties of LiMnO2-organic Composite Cathodes with High Capacity for Lithium Ion Polymer Battery)

  • 김종욱;조영재;구할본
    • 한국전기전자재료학회논문지
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    • 제15권2호
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    • pp.162-168
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    • 2002
  • The purpose of this study is to research and develop LiMnO$_2$-organic and Li$_{0.3}$MnO$_{2}$-organic composite with high energy density for Lithium ion polymer battery. This paper describes cyclic voltammetry, impedance sepctroscopy, electrochemical properties of LiMnO$_2$-organic and Li$_{0.3}$MnO$_{2}$-organic composite with polymer electrolyte as a function of a mixed ratio. The first discharge capacity of LiMnO$_2$-PAn with 3 wt.% PAn was 83mHA/g, while that of Li$_{0.3}$MnO$_{2}$-PPy composite was 136 mAh/g. The Ah efficiency was above 98% after the 2nd cycle. The LiMnO$_2$-PAn with DMcT 2 wt.% and Li$_{0.3}$MnO$_{2}$-PPy composites cathode with 5wt. PPy in PVDF-PC-EC-LiClO$_4$ electrolyte showed good capaity with cycling. The discharge capacity of LiMnO$_2$-PAn with wt.% DMcT was 80 and 130 mAh/g at 1st and 12th cycle, respectively. The capacity of LiMnO$_2$-PAn composite with 2 wt.% DMcT was higher than that of LiMnO$_2$-PAn composite.mposite.

상온에서 작동되는 전고체전지 용 PEO/PPC 기반의 복합 고체 전해질 (PEO/PPC based Composite Solid Electrolyte for Room Temperature Operable All Solid-State Batteries)

  • 신소현;김성훈;조용현;안욱
    • 전기화학회지
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    • 제25권3호
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    • pp.105-112
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    • 2022
  • 전고체전지의 상용화를 위해서는 상온에서 작동이 가능한 고체전해질 개발이 필수적이며 이온전도도가 높은 물질을 채택하여 전고체전지를 제조해야 한다. 따라서, 기존의 옥사이드 계열의 고체의 이온전도도를 높이기 위하여 이종원소가 도핑된 Li7La3Zr2O12 (LLZO)를 필러소재(Al, Nb-LLZO)로 사용하였으며, 상온에서 작동이 가능하도록 Poly(ethylene oxide)/Poly(propylene carbonate) (PEO/PPC) 기반의 가넷형 무기계 고체고분자 전해질을 제조하였다. 이원금속 원소를 도핑한 가넷형 무기계 필러와 PEO/PPC (1:1 비율로 섞인) 고분자를 1:2.4의 비율로 균일하게 교반하여 전해질을 합성해 상온과 60 ℃에서 전고체 전지의 전기학적 성능을 분석하였다. 제조한 복합 전해질은 이원금속의 도핑으로 인하여 이온전도도가 향상되었으며, PEO 단독으로 사용하는 전해질보다 PPC를 1:1로 첨가하였을 때 이온전도도 향상을 도와 60 ℃ 뿐만 아니라 상온에서 전고체 전지의 용량과 용량 유지율이 개선되었음을 확인하였다.

Ionic Cluster Mimic Membranes Using Ionized Cyclodextrin

  • Won Jong-Ok;Yoo Ji-Young;Kang Moon-Sung;Kang Yong-Soo
    • Macromolecular Research
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    • 제14권4호
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    • pp.449-455
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    • 2006
  • Ionic cluster mimic, polymer electrolyte membranes were prepared using polymer composites of crosslinked poly(vinyl alcohol) (PVA) with sulfated-${\beta}$-cyclodextrins (${\beta}-CDSO_3H$) or phosphated-${\beta}$-cyclodextrins (${\beta}-CDPO(OH)_2$). When Nafion, developed for a fuel cell using low temperature, polymer electrolyte membranes, is used in a direct methanol fuel cell, it has a methanol crossover problem. The ionic inverted micellar structure formed by micro-segregation in Nafion, known as ionic cluster, is distorted in methanol aqueous solution, resulting in the significant transport of methanol through the membrane. While the ionic structure formed by the ionic sites in either ${\beta}-CDSO_3H$ or ${\beta}-CDPO(OH)_2$ in this composite membrane is maintained in methanol solution, it is expected to reduce methanol transport. Proton conductivity was found to increase in PVA membranes upon addition of ionized cyclodextrins. Methanol permeability through the PVA composite membrane containing cyclodextrins was lower than that of Nafion. It is thus concluded that the structure and fixation of ionic clusters are significant barriers to methanol crossover in direct methanol fuel cells.

전기방사법으로부터 제조된 $TiO_2$ 섬유 복합전극의 충방전 특성 (Charge-discharge Characteristics of $TiO_2$-Activated Carbon Composite Electrode using Electrospinning)

  • 안민선;김한주;손원근;;박수길
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2005년도 제36회 하계학술대회 논문집 C
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    • pp.2022-2024
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    • 2005
  • Electrical double-layer capacitor (EDLC) is an electrochemical energy storage device in which electric charges only accumulated by a pure electrostatic attraction force are stored on the electrolyte-electrode interface in a form of double layer and separated by the electrolyte. The composite was prepared by mixing nanosize $TiO_2$ and activated carbon through a means of ultrasonic vibration in ethanol solution for 30 min in various mass ratios of $AC:TiO_2$ to form activated carbone-semiconducting oxide composites. Either 1.0 M $LiClO_4/EC-DEC$ or $Et_4NBF_4$/EC-DEC was used as the electrolyte. It was found that with modification of $TiO_2$, the specific capacitance of activated carbon measured at $1mA/cm^2$ was increased from 40 to 50 F/g. This method is unique in comparison the conventional method because it uses semiconducting TiO2 other than electrochemically active materials such as $RuO_2$. The increase in specific capacitance could be attributed to the decrease in electric polarization, caused by the introduction of $RuO_2$.

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폴리에틸렌 이민과 혼합된 PEO 복합체 전해질의 이온 전도도에 미치는 실리카 필러 첨가 효과 (Silica Filler Addition Effect on the Ion Conductivity of PEO Composite Electrolytes Blended with Poly(ethylene imine))

  • 김주현;김광만;이영기;정용주;김석
    • Korean Chemical Engineering Research
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    • 제49권4호
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    • pp.465-469
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    • 2011
  • 본 연구는 이온전도도와 계면 특성을 향상시키기 위해 PEO, poly(ethylene oxide)와 PEI, poly(ethylenimine)의 블렌드에 무기 필러인 실리카를 첨가한 고분자 전해질을 조사하였다. 리튬염으로 $LiClO_4$를 사용하고 무기 필러로서 실리카($SiO_2$)를 고분자 복합체 전해질에 첨가해서 전해질 응용 가능성 측정을 위해 AC임피던스법을 이용하여 이온전도도를 측정하였다. 임피던스 측정에서 무기 필러의 첨가량이 증가함에 따라 반원의 크기가 점점 감소하는 것은, 이온전도도가 첨가량이 20 wt%가 될 때까지 증가하는 경향을 보여주었다. 하지만, 첨가량이 20 wt% 이상이 되었을 때는 앞서 측정한 이온전도도와 큰 차이가 없어 무기 필러가 포화 상태가 됨을 알 수 있었다. XRD 분석을 이용하여 PEO의 회절 피크가 감소함을 알 수 있었는데, 무기 필러의 첨가로 인해 결정화도가 감소됨을 알 수 있었다. 전해질 막의 형태학 구조 변화를 알아보기 위해 SEM 분석을 이용하였는데, 실리카 함량이 높을 때, 더 비균일한 형태학적 구조, 즉 실리카가 강한 결착력을 지니는 PEI로 인해 고르게 분산되어 있는 형태를 보였다.

바나듐 레독스 흐름 전지를 위한 과불소화 술폰산 복합막 (Perfluorinated Sulfonic Acid based Composite Membranes for Vanadium Redox Flow Battery)

  • 조국진;박진수
    • 전기화학회지
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    • 제19권1호
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    • pp.21-27
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    • 2016
  • 바나듐 레독스 흐름 전지는 황산 바탕용액 내 바나듐 이온을 함유하는 전해질을 활용하여 충전과 방전을 번갈아 운전하는 에너지 저장 장치 중 하나이다. 양극액엔 $V^{5+}$$V^{4+}$가 음극액엔 $V^{2+}$$V^{3+}$가 충전 또는 방전 모드에 따라 주로 존재하게 된다. 두 종류의 바나듐 용액이 혼액되는 것을 방지하기 위해 주로 수소이온교환막을 활용하여 전체 셀을 완성하게 된다. $V^{5+}$의 높은 산화력으로 현재 듀퐁사의 Nafion 117이 유력하나 바나듐 이온의 높은 크로스오버라는 단점을 극복해야 한다. 본 연구에서는 상기 단점을 극복할 뿐만 아니라 고가의 Nafion계 막의 가격을 저감하고 화학적 안정성을 지속적으로 유지하기 위해 다공성 폴리에틸렌 필름에 나피온 고분자를 함침하여 바나듐 레독스 흐름 전지용 복합막을 제조하였으며, 상용막인 Nafion 117과 성능을 비교 분석하였다. 복합막의 두께가 두꺼워질수록 함수율과 이온전도도가 증가 하였으나 Nafion 117에 비해 다소 낮은 성능을 확인하였으며, 바나듐 이온의 투과성은 현저히 줄어드는 것을 확인할 수 있었다. 충 방전 실험 결과, $190{\mu}m$ 두께의 나피온 복합막이 가장 좋은 성능을 보였으며, Nafion 117과 비교하여 전압효율은 낮아졌지만, 충 방전 효율이 높아져 전체적인 에너지 효율은 비슷하게 측정되었다. 또한 6.4% 중량비에 해당하는 지지체만큼의 과불소화 술폰산 고분자의 중량이 감소함에 따라 비용을 절감할 수 있었으며, 성능면에서는 바나듐 이온의 투과도를 낮추어 자가 방전 속도를 저하시키면서 충 방전 용량의 감소가 느려지는 것을 알 수 있었다.