• Title/Summary/Keyword: 수소 이온 전도도

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제일 원리 사용 Y-doped SrTiO3 연료극 특성 이해 및 3d 전위 금속 치환에 의한 표면 반응성 제어

  • Ham, Hyeong-Cheol;Kim, Hui-Su;Kim, Yong-Min;Yun, Chang-Won;Yun, Seong-Pil;Han, Jong-Hui;Nam, Seok-U
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.08a
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    • pp.140-140
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    • 2012
  • 최근에 고체산화물 연료전지(SOFC) 연료극 조건에서 우수한 상 안정성, 높은 혼합 전자/이온 전도도 및 황/탄소 저항성 때문에 yttrium-doped strontium titanium oxide (Y-doped SrTiO3)가 대체 연료극 재료로 주목을 받아 왔다. 그러나 Y-doped SrTiO3는 연료 산화에 대해서 기존의 Ni 계열 연료극보다 낮은 전기화학적 활성을 보이는 단점이 있다. 따라서, 효율적인 Y-doped SrTiO3 계열의 연료극 재료를 개발하기 위해서는 Y-doped SrTiO3의 연료극 특성 및 반응성의 이해가 필수적이다. 본 발표에서는 SOFC 연료극에서 수소 산화 반응성을 결정함에 있어 표면 산소 vacancy 형성 에너지의 역할에 대한 spin-polarized DFT (density functional theory) 결과를 발표할 예정이다. 표면 산소 vacancy 형성 에너지는 수소 산화 반응[H2+O (surface) ${\rightarrow}$ OH+OH ${\rightarrow}$ H2O+O (vacancy)]과 밀접한 관계가 있다는 것을 확인하였다. 또한 Y-doped SrTiO3의 표면을 3d-전이금속을(Sc, V, Cr, Fe, Co, Mn, Ni, Cu) 도핑함으로써 표면 산소 vacancy 형성 에너지를 제어할 수 있다는 것을 보였다.

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Synthesis and Properties of Sulfonated Poly (Arylene Ether Sulfone) Block Copolymers with Naphthalene Moiety for Polymer Electrolyte Fuel Cells (고분자 전해질형 연료전지용 나프탈렌 부분을 갖는 술폰화된 폴리(아릴렌 이써 설폰) 블록 공중합체의 합성과 특성연구)

  • HAN, DASOM;YOO, DONG JIN
    • Journal of Hydrogen and New Energy
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    • v.29 no.4
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    • pp.331-338
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    • 2018
  • In this study, sulfonated PAES block copolymers have been synthesized via nucleophilic substitution reaction. Hydrophobic oligomer was prepared using 2,6-dihydroxynaphthalene and bis(4-chlorophenyl) sulfone, whereas hydrophilic oligomer was prepared using sulfonated bis(4-chlorophenyl) sulfone and bis(4-hydroxyphenyl) sulfone. The chemical structure of polymers was analyzed by $^1H$ NMR, FT-IR and GPC. The thermal properties of polymers were measured by TGA and DSC. The oxidative stability of membranes was investigated by Fenton's test. Furthermore, the proton conductivity of membrane was found to be 26 mS/cm at $90^{\circ}C$. All physiochemical properties suggest that fabricated membrane have a great potential for applications in PEMFC.

Synthesis and Characterization of Di and Triblock Copolymers Containing a Naphthalene Unit for Polymer Electrolyte Membranes (고분자전해질 막을 위한 나프탈렌 단위를 포함하는 디 및 트리 블록공중합체의 합성 및 특성분석)

  • KIM, AERHAN
    • Journal of Hydrogen and New Energy
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    • v.27 no.6
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    • pp.660-669
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    • 2016
  • A fluorinated-sulfonated, hydrophobic-hydrophilic copolymer was planed subsequently synthesized using typical nucleophilic substitution polycondensation reaction. A novel AB and ABA (or BAB) block copolymers were synthesized using sBCPSBP (sulfonated 4,4'-bis[4-chlorophenyl)sulfonyl]-1,1'-biphenyl), DHN (1,5-dihydroxynaphthalene), DFBP (decafluorobiphenyl) and HFIP (4,4'-hexafluoroisopropylidenediphenol). All block copolymers were easily cast and made into clear films. The structure and synthesized copolymers and corresponding membranes were analyzed using GPC (gel permeation chromatography), $^1H$-NMR ($^1H$ nuclear magnetic resonance) and FT-IR (Fourier transform infrared). TGA (Thermogravimetric analysis) and DSC (differential scanning calorimetry) analysis showed that the prepared membranes were thermally stable, so that elevated temperature fuel cell operation would be possible. Hydrophobic/hydrophilic phase separation and clear ionic aggregate block morpology was confirmed in both triblock and diblock copolymer in AFM (atomic force microscopy), which may be highly related to their proton transport ability. A sulfonated BAB triblock copolymer membrane with an ion-exchange capacity (IEC) of 0.6 meq/g has a maximum ion conductivity of 40.3 mS/cm at $90^{\circ}C$ and 100% relative humidity.

Electrochemical Evaluation of Mixed Ionic and Electronic Conductor-Proton Conducting Oxide Composite Cathode for Protonic Ceramic Fuel Cells (혼합 이온 및 전자 전도체-프로톤 전도성 전해질 복합 공기극을 적용한 프로토닉 세라믹 연료전지의 전기화학적 성능 평가)

  • HYEONGSIK SHIN;JINWOO LEE;SIHYUK CHOI
    • Journal of Hydrogen and New Energy
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    • v.35 no.1
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    • pp.48-55
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    • 2024
  • The electrochemically active site of mixed ionic and electronic conductor (MIEC) as a cathode material is restricted to the triple phase boundary in protonic ceramic fuel cells (PCFCs) due to the insufficient of proton-conducting properties of MIEC. This study primarily focused on expanding the electrochemically active site by La0.6Sr0.4Co0.2Fe0.8O3-δ(LSCF6428)-BaZr0.4Ce0.4Y0.1Yb0.1O3-δ (BZCYYb4411) composite cathode. The electrochemical properties of the composite cathode were evaluated using anode-supported PCFC single cells. In comparison to the LSCF6428 cathode, the peak power density of the LSCF6428-BZCYYb4411 composite cathode is much enhanced by the reduction in both ohmic and non-ohmic resistance, possibly due to the increased electrochemically active site.

RF-Magnetron Sputtering법에 의해 성막된 $Ga_2O_3$가 혼합된 ZnO박막의 전기적 및 광학적 특성

  • Kim, Mi-Seon;Bae, Gang;Son, Seon-Yeong;Hong, U-Pyo;Kim, Hwa-Min;Lee, Jong-Yeong
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.120-120
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    • 2010
  • 최근 투명전도성 산화물(Transparent Conductive Oxide, TCO) 박막은 액정 표시소자(LCD), 플라즈마 디스플레이 패널(PDP), 압전소자 및 태양전지의 투명소자로 사용되어지고 있다. 현재 가장 널리 사용되어지고 있는 투명전극물질인 인듐주석산화물(indium tin oxide, ITO)은 낮은 비저항과 높은 투과율을 가지고 있지만, 높은 원자재의 가격 및 수소플라즈마 처리시 In과 Sn이 환원되어 전기적, 광학적으로 불안정한 문제점들이 지적되고 있다. 이러한 문제점들을 해결하기 위해 최근 적외선 및 가시광선 영역에서 높은 투과도 및 전기 전도성과 수소플라즈마에 대한 화학적 안정성을 갖는 ZnO를 기반으로 3족 원소를 첨가한 새로운 투명 전도막에 대한 연구가 활발하다. 본 연구에서는 RF-Magnetron Sputtering법을 이용하여 $Ga_2O_3$ 혼합비에 따라 제작된 ZnO(GZO) 박막들의 전기적, 광학적, 구조적인 특성들을 분석하였다. 측정결과, $Ga_2O_3$의 첨가량이 7 wt.%인 GZO 박막이 가시광선영역에서 80%이상의 높은 투과율과 $50.5\;\Omega/\Box$의 가장 낮은 면저항을 나타내었다. 이는 Ga원소가 다른 3족 원소와 격자결합을 비교할 때, 이온의 크기가 Zn원소와 비슷하여 최적화된 혼합율을 가지는 경우 격자결합을 최소화시켜 캐리어 밀도의 증가로 인해 높은 전도성을 가지며, 고온에서도 전기적 특성 및 내구성이 향상되기 때문이다. 또한 기판온도에 따른 열처리 특성으로서 기판의 온도를 $100^{\circ}{\sim}400^{\circ}C$까지 변화를 주어 실험하였다. X-선 회절패턴 분석결과 기판온도가 증가함에 따라 ZnO (002) 방향이 감소하는 반면 ZnO(103) 방향이 증가하였으며, 기판온도가 $300^{\circ}C$ 일 때 $17.1\;\Omega/\Box$의로 가장 낮은 면저항이 나타났다. 이는 SEM 이미지를 분석한 결과, 실온에서 제작된 박막과 비교해 300 에서 증착된 GZO 박막이 결정립의 크기가 크고 밀도도 조밀해져 전하의 이동도가 향상되었기 때문이다.

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Electrical Conduction in Y2O3-doped SrZrO3-metal Electrode System (Y2O3가 도핑된 SrZrO3-금속전극계의 전기전도 특성)

  • Baek, Hyun-Deok;Lee, Poong-Hun
    • Journal of the Korean Ceramic Society
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    • v.39 no.4
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    • pp.367-376
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    • 2002
  • Electrical conduction in $SrZr_{1-x}Y_xO_{3-\delta}$((x=0.05, 0.10)-metal electrode system was investigated by impedance spectroscopy and two-probe d.c. conductivity measurement. Electrode conductivity in anodic direction varies with $P_W^{1/2}$( and that in cathodic direction with $P_{O2}^{1/4}$ in oxidizing atmosphere. In hydrogen atmosphere, the addition of water vapor increased the electrode conductivity both in anodic and cathodic direction. Increasing dopant concentration from 5 to 10% showed a more than four times increase in anodic conduction as well as bulk conduction of the solid electrolyte. This observation implies that unfilled oxygen vacancy concentration increases rapidly as the dopant content increases in humid atmosphere. The activation energy of cathodic conduction in Pt and Ag electrode was nearly same below $800^{\circ}C$ which means the rate of cathodic reaction is determined by the reaction in the electrolyte surface rather than on the metal electrodes.

Preparation and Characterization of SPAES/SPVdF-co-HFP Blending Membranes for Polymer Electrolyte Membrane Fuel Cells (고분자 전해질 연료전지용 술폰화된 폴리(아릴렌 이써 설폰)/SPVdF-co-HFP 브렌딩 멤브레인의 제조 및 특성 분석)

  • PARK, CHUL JIN;KIM, AE RHAN;YOO, DONG JIN
    • Journal of Hydrogen and New Energy
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    • v.30 no.3
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    • pp.227-236
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    • 2019
  • In this work, preparation and characterizations of hybrid membranes containing sulfonated poly(arylene ether sulfone) (SPES) and sulfonated poly(vinylidene fluoride-co-hexafluoropropylene) (SPVdF-co-HFP) (20, 30 or 40 wt%) were carried out. The structure of hybrid membranes was confirmed using X-ray diffraction (XRD) analysis and the Fourier transform infrared (FT-IR) spectroscopy. The prepared SPAES/SPVdF-30 membrane exhibits higher ionic conductivity of 68.9 mS/cm at $90^{\circ}C$ and 100% RH. Besides, the other studies showed that the hybrid membrane has good oxidation stability, thermal stability, and mechanical stability. Thus, we believe that the prepared hybrid membrane is suitable for the development of membranes for fuel cell applications.

A Study on the Characteristics of Anion Exchange Membrane According to Aliphatic Alkyl Chain Spacer Length Introduced into Branched Poly (Arylene Ether Sulfone) (수지상 폴리(알릴렌 이써 설폰)에 도입된 지방족 알킬사슬 연결자길이에 따른 음이온교환막의 특성 연구)

  • KIM, HYUN JIN;YOO, DONG JIN
    • Journal of Hydrogen and New Energy
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    • v.33 no.3
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    • pp.209-218
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    • 2022
  • Recently, research on the development of anion exchange membranes (AEMs) has received considerable attention from the scientific community around the world. Here, we fabricated a series of AEMs with branched structures with different alkyl spacers and conducted comparative evaluations. The introduction of these branched structures is an attempt to overcome the low ionic conductivity and stability problems that AEMs are currently facing. To this end, branched polymers with different spacer lengths were synthesized and properties of each membrane prepared according to the branched structure were compared. The chemical structure of the polymer was investigated by proton nuclear magnetic resonance, Fourier transform infrared, and gel permeation chromatography, and the thermal properties were investigated using thermogravimetric analysis. The branched anion exchange membrane with (CH2)3 and (CH2)6 spacers exhibited ionic conductivities of 8.9 mS cm-1 and 22 mS cm-1 at 90℃, respectively. This means that the length of the spacer affects the ionic conductivity. Therefore, this study showing the effect of the spacer length on the ionic conductivity of the membrane in the polymer structure constituting the ion exchange membrane is judged to be very useful for future application studies of AEM fuel cells.

Effect of hydrophobic domain on proton conductivity of sulfonated polyimide membranes (술폰화 폴리이미드 막의 수소이온 전도도에 대한 소수성 영역의 효과)

  • Lee, Chang-Hyun;Sohn, Joon-Yong;Park, Ho-Bum;Lee, Young-Moo
    • Proceedings of the Membrane Society of Korea Conference
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    • 2004.05b
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    • pp.61-64
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    • 2004
  • The proton transport through proton exchange membranes is controlled by the distribution of hydrated structure connected with negative-charged fixed ions such as phosphonic acid, carboxylic acid and sulfonic acid, or water molecules within the membrane.(omitted)

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