• 제목/요약/키워드: Hybrid Electrolyte

검색결과 102건 처리시간 0.021초

Quasi-Solid-State Hybrid Electrolytes for Electrochemical Hydrogen Gas Sensor

  • Kim, Sang-Hyung;Han, Dong-Kwan;Hong, SeungBo;Jeong, Bo Ra;Park, Bok-Seong;Han, Sang-Do;Kim, Dong-Won
    • Journal of Electrochemical Science and Technology
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    • 제10권3호
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    • pp.294-301
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    • 2019
  • The quasi-solid-state hybrid electrolytes were synthesized by chemical cross-linking reaction of methacrylate-functionalized $SiO_2$ ($MA-SiO_2$) and tetra (ethylene glycol) diacrylate in aqueous electrolyte. A quasi-solid-state electrolyte synthesized by 6 wt.% $MA-SiO_2$ exhibited a high ionic conductivity of $177mS\;cm^{-1}$ at room temperature. The electrochemical $H_2$ sensor assembled with quasi-solid-state electrolyte showed relatively fast response and high sensitivity for hydrogen gas at ambient temperature, and exhibited better durability and stability than the liquid electrolyte-based sensor. The simple construction of the sensor and its sensing characteristics make the quasi-solid-state hydrogen sensor promising for practical application.

Photovoltaic Performance of Dye-sensitized Solar Cells assembled with Hybrid Composite Membrane based on Polypropylene Non-woven Matrix

  • Choi, Yeon-Jeong;Kim, Dong-Won
    • Bulletin of the Korean Chemical Society
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    • 제32권2호
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    • pp.605-608
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    • 2011
  • Hybrid composite membranes were prepared by coating poly(ethylene oxide) and $SiO_2$ particles onto the porous polypropylene nonwoven matrix. Gel polymer electrolytes prepared by soaking the hybrid composite membranes in an organic electrolyte solution exhibited ionic conductivities higher than $1.1{\times}10^{-3}Scm^{-1}$ at room temperature. Dyesensitized solar cell (DSSC) employing the hybrid composite membrane with PEO and 10 wt % $SiO_2$ exhibited an open circuit voltage of 0.77 V and a short circuit current of 10.78 $mAcm^{-2}$ at an incident light intensity of 100 $mWcm^{-2}$, yielding a conversion efficiency of 5.2%. DSSC employing the hybrid composite membrane showed more stable photovoltaic performance than that of the DSSC assembled with liquid electrolyte.

복합고체 전해질을 적용한 리튬이차전지의 전기화학적 특성 (Electrochemical Performance of Rechargeable Lithium Battery Using Hybrid Solid Electrolyte)

  • 한종수;유학균;김재광
    • 전기화학회지
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    • 제24권4호
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    • pp.100-105
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    • 2021
  • 최근 리튬이차전지의 안전성을 향상시킨 전고체 전지가 많은 관심의 대상이 되고 있으나 전도성 세라믹 또는 고체 고분자 전해질을 적용한 고체전지는 높은 계면 저항, 부반응 등과 같은 문제점을 지니고 있어 전기화학적 특성이 낮다. 기존 전고체 전지의 이러한 문제점을 해결하기 위하여 복합고체 전해질이 제안되었으며 본 연구에서는 나시콘 구조의 나노 입자 Li1.5Al0.5Ti1.5P3O12 (LATP) 전도성 세라믹, PVdF-HFP, 카보네이티 기반 액체전해질을 복합화 하여 유사고체 전해질을 제작하였다. 이 복합고체 전해질은 5.6 V의 높은 전압 안전성을 가지며 리튬이온의 탈리-착리 테스트에서 리튬 금속전극의 덴드라이트 성장 억제 효과가 있음을 보여준다. 또한 복합고체 전해질을 적용한 LiNi0.83Co0.11Mn0.06O2 (NCM811)기반 전지에서 4.8 V의 높은 충전 종지 전압에도 241.5 mAh/g의 높은 방전 용량을 나타내며 안정적인 전기화학 반응이 일어난다. NCM811 기반 전지의 90도 충전-방전 중에도 전지의 단락이나 폭발 없이 139.4 mAh/g 방전 용량을 보인다. 따라서 LATP기반 복합고체 전해질은 리튬이차전지의 안전성과 전기화학적 특성을 향상 시킬 수 있는 효과적인 방법임을 알 수 있다.

활성탄/리튬티탄산화물 커패시터의 전기화학적 특성에 미치는 비닐에틸렌카보네이트의 영향 (Effect of Vinyl Ethylene Carbonate on Electrochemical Characteristics for Activated Carbon/Li4Ti5O12 Capacitors)

  • 권용갑;최호석;이중기
    • 전기화학회지
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    • 제15권3호
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    • pp.190-197
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    • 2012
  • 비닐에틸렌 카보네이트(VEC: vinyl ethylene carbonate)를 전해질 첨가제로 사용했을 때 하이브리드 커패시터(hybrid capacitors) 전극에서 나타나는 전기화학적 특성변화에 대해서 고찰하였다. 하이브리드 커패시터는 양극은 활성탄(AC : activated carbon) 음극은 리튬티타늄옥사이드(LTO: $Li_4Ti_5O_{12}$)를 사용하였고, 전해질로서는 에틸렌 카보네이트(EC: ethylene carbonate): 디메틸 카보네이트 (DMC: dimethyl carbonate) : 에틸메틸 카보네이트(EMC : ethyl methyl carbonate)를 사용하였고, 염으로 육불화인산리튬($LiPF_6$: lithium hexafluoro phosphate)을 사용하였다. 전극 표면의 산소관능기 그룹을 제거하고, 표면을 환원시킴으로써 전극에 안정성을 향상시킨다고 알려진 VEC의 첨가량에 따른 전기화학적 특성을 평가하였으며, 0.7%(부피비)의 VEC첨가시, 가장 우수한 전기화학적 특성을 얻을 수 있었다. 0.7% 이상 첨가하였을 경우, 오히려 부반응 증가로 전기화학적 성능이 감소하였다. X-ray photoelectron spectrocopy (XPS) 결과로부터 LTO 전극에서 VEC가 첨가되지 않은 전해질에 비해 LiF가 감소한 것을 확인 할 수 있었다. VEC가 첨가되지 않은 전해질은 2500 사이클 후, 43.2 %의 용량 유지를 나타냈지만, 최적화된 VEC 첨가를 통하여 82.7 %의 높은 용량을 유지하는 특성을 가진 하이브리드 커패시터를 얻을 수 있었다.

자기력 최적화에 따른 전해-자기 복합가공의 특성 평가에 관한 연구 (Study on Characteristics of EP-MAP Hybrid Machining by Optimization of Magnetic Flux Density)

  • 박창근;곽재섭
    • 대한기계학회논문집A
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    • 제37권3호
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    • pp.319-324
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    • 2013
  • 본 연구에서는 CNT-Co 복합체를 이용한 전해-자기(EP-MAP) 복합가공 공정을 개발하였다. CNT-Co 복합체는 높은 강도와 뛰어난 전기적 성질을 가지는 소재이기 때문에 전해-자기 복합가공의 연마재 및 전극으로 적합하다. 전해-자기 복합가공의 시너지 효과를 평가하기 위해서 각 실험조건하에서 특성평가 실험이 수행되었으며, 각 실험인자는 자기력, 전해액, 공구의 회전속도, 전해전압, 간극 등이 있다. 그 결과 CNT-Co 복합체와 화학적 반응이 없는 $NaNO_3$ 가 본 공정의 가장 적절한 전해액으로 선정되었다. 그리고 높은 자기력은 가공중의 CNT-Co 복합체내에 전해액 유동을 방해하는 인자이다. 이로 인해 공작물의 표면상의 가공부위에 열에너지가 상승하게 되고 공작물 표면손상과 피팅현상이 발생하여 가공효율성이 떨어지게 된다.

Performance of a Ceramic Fiber Reinforced Polymer Membrane as Electrolyte in Direct Methanol Fuel Cell

  • Nair, Balagopal N.;Yoshikawa, Daishi;Taguchi, Hisatomi
    • 멤브레인
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    • 제14권1호
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    • pp.53-56
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    • 2004
  • Direct Methanol Fuel Cell (DMFC) is considered as a candidate technology for applications in stationary, transportation as well as electronic power generation purposes. To develop a high performance direct methanol fuel cell(DMFC), a competent electrolyte membrane is needed. The electrolyte membrane should be durable and methanol crossover must be low. One of the approaches to increase the stability of generally used polymer electrolyte membranes such as Nafion against swelling or thermal degradation is to bond it with an inorganic material physically or chemically. In Noritake Company, we have developed a novel method of reinforcing the polymer electrolyte matrix with inorganic fibers. Methanol crossover values measured were significantly lower than the original polymer electrolyte membranes. These fiber reinforced electrolyte membranes (FREM) were used for DMFC study and stable power output values as high 160 mW/$\textrm{cm}^2$ were measured. The details of the characteristics of the membranes as well as I-V data of fuel cell stacks are detailed in the paper.

Hybrid Capacitors Using Organic Electrolytes

  • Morimoto, T.;Che, Y.;Tsushima, M.
    • 전기화학회지
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    • 제6권3호
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    • pp.174-177
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    • 2003
  • Electric double-layer capacitors based on charge storage at the interface between a high surface area activated carbon electrode and an electrolyte solution are characterized by their long cycle-life and high power density in comparison with batteries. However, energy density of electric double-layer capacitors obtained at present is about 6 Wh/kg at a power density of 500W/kg which is smaller as compared with that of batteries and limits the wide spread use of the capacitors. Therefore, a new capacitor that shows larger energy density than that of electric double-layer capacitors is proposed. The new capacitor is the hybrid capacitor consisting of activated carbon cathode, carbonaceous anode and an organic electrolyte. Maximum voltage applicable to the cell is over 4.2V that is larger than that of the electric double-layer capacitor. As a result, discharged energy density on the basis of stacked volume of electrode, current collector and separator is more than 18Wh/l at a power density of 500W/l.

The Surface Modification of Electrode with Solid Electrolyte Interphase for Hybrid Supercapacitor

  • Choi, Min-Geun;Kang, Soo-Bin;Yoon, Jung Rag;Lee, Byung Gwan;Jeong, Dae-Yong
    • Journal of Electrical Engineering and Technology
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    • 제10권3호
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    • pp.1102-1106
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    • 2015
  • A hybrid supercapacitor (HS) is an energy storage device used to enhance the low weight energy density (Wh/kg) of a supercapacitor. On the other hand, a sudden decrease in capacity has been pointed out as a reliability problem after many charge/discharge cycles. The reliability problem of a HS affects the early aging process. In this study, the capacity performance of a HS was observed after charge/discharge. For detailed analysis of the initial charge/discharge cycles, the charge and discharge curve was measured at a low current density. In addition, a solid electrolyte interphase (SEI) layer was confirmed after the charge/discharge. A HC composed of a lithium titanate (LTO) anode and active carbon cathode was used. The charge/discharge efficiency of the first cycle was lower than the late cycles and the charge/discharge rate was also lower. This behavior was induced by SEI layer formation, which consumed Li ions in the LTO lattice. The formation of a SEI layer after the charge/discharge cycles was confirmed using a range of analysis techniques.

PV와 PEFC를 병용한 가정용 분산 전원 시스템의 전력평준화 제어법 (Power Balancing Control Method of A Residential Distributed Generation System using Photovoltaic Power Generation and Polymer Electrolyte Fuel Cells)

  • 윤영변;문상필;박한석;우경일
    • 전기학회논문지P
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    • 제65권4호
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    • pp.335-339
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    • 2016
  • Output power in photovoltaic systems changes steeply with the change of the sun intensity. The change of output power has influence on the electric power quality of the system. This paper proposes a residential distributed generation system using photovoltaic power generation and polymer electrolyte fuel cells(hybrid systems). In order to level the output power which changes steeply the polymer electrolyte fuel cells are connected to the photovoltaic power generation system in parallel. Thus the generated power of all the system can be leveled. However, the steep generated power in the photovoltaic power generation system can not be leveled. Therefore, the electric double layer capacitor(EDLC) is connected in parallel with the hybrid systems. It is confirmed by the simulation that the proposed distributed generation system is available for a residential supply.

고분자전해질 연료전지용 유기/무기 복합 전해질 (Organic / inorganic composite membrane for Polymer Electrolyte Membrane Fuel Cell)

  • 최성호;홍현실;이흥찬;김유미;김건
    • 한국전기화학회:학술대회논문집
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    • 한국전기화학회 2003년도 연료전지심포지움 2003논문집
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    • pp.169-171
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    • 2003
  • Organic/inorganic hybrid membranes have been prepared and evaluated as polymer electrolytes in a polymer electrolyte membrane fuel cell (PEMFC). Previously, partially fluorinated poly (arylenether) was synthesized and the polymer was sulfonated by fuming sulfuric acid$(30\%\;SO_3)$. Modification of these polymers with coupling agent and inorganic materials was carried out to prepare membranes. Membranes cast from these materials were investigated in relation to the proton conductivity and weight loss at the room temperature. It was found that these membranes had a higher conductivity of $10^{-2}\;Scm^{-1}$ at the room temperature. But inorganic materials have leaked out from the hybrid membrane. If this problem is resolved, organic/inorganic hybrid membranes will become satisfactory Polymer electrolytes for the PEMFC.

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