• 제목/요약/키워드: sulfonated poly ether ether ketone

검색결과 38건 처리시간 0.033초

철-크롬 산화환원흐름전지에서 Sulfonated Poly (Ether Ether Ketone)막의 활물질 Crossover (Active Material Crossover through Sulfonated Poly (Ether Ether Ketone) Membrane in Iron-Chrome Redox Flow Battery)

  • 김영숙;오소형;김유정;김성지;추천호;박권필
    • Korean Chemical Engineering Research
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    • 제57권1호
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    • pp.17-21
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    • 2019
  • 산화환원흐름전지(Redox Flow Battery, RFB)는 대용량 에너지 저장장치로 바나듐 산화환원흐름전지가 대표적인 RFB인데, V-RFB는 고가인 점이 문제다. 철-크롬 RFB는 저가의 활물질(철, 크롬)을 사용해 경제적인 점이 장점인데, 성능이 낮은 점이 해결해야 할 과제다. 낮은 성능의 한 원인이 활물질의 크로스오버인데, 본 연구에서 불소계막 대신 탄화수소계막인 sulfonated Poly (ether ether ketone) (sPEEK)막을 사용해 활물질 투과를 감소시키는 연구를 하였다. sPEEK막의 크롬 이온 투과도는 $1.8{\times}10^{-6}cm^2/min$으로 Nafion막에 비해 약 1/33으로 작아서 불소계막 대신 sPEEK막을 사용하면 높은 활물질 투과문제를 해결할 수 있음을 보였다. 철 이온의 sPEEK막 확산의 활성화 에너지도 24.9 kJ/mol으로 Nafion막의 약 66%로 작았다. 그리고 고분자막에 들어간 e-PTFE 지지체가 철-크롬 산화환원흐름전지(ICRFB)에서 활물질 투과도를 감소시킴을 보였다.

PEMFC용 설폰화 Poly(ether ether ketone) (SPEEK) 전기방사 나노섬유 이온교환막의 제조 및 특성 (Preparation and Properties of Sulfonated Poly(ether ether ketone) (SPEEK) Electrospun Nanofibrous Ion-exchange Membrane for PEMFC)

  • 곽노석;최은정;황택성
    • 폴리머
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    • 제36권2호
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    • pp.155-162
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    • 2012
  • 전기방사 방법으로 sulfonated poly(ether ether ketone) (SPEEK) 나노섬유를 제조하고, 압축성형법으로 고분자 전해질막 연료전지(polymer electrolyte membrane fuel cell, PEMFC)용 나노섬유막을 제조하였다. SPEEK의 최대 설폰화율은 95% 이었고 초기 열분해 온도는 약 $280^{\circ}C$로 PEEK 보다 낮았으며 접촉각은 설폰화도가 증가함에 따라 감소하였다. 전기방사 나노섬유의 최적 인가전압, 유속, 방사거리(tip to collector distance, TCD) 및 농도는 각각 22 kV, 0.3 mL/hr, 5 cm, 23 wt% 이었고 평균 섬유직경은 47.6 nm 이었다. 한편, SPEEK 이온교환 나노섬유막의 함수율 및 이온교환용량은 설폰화 시간과 설폰화제 함량이 증가함에 따라 증가하였으며 최적값은 각각 20%, 2.03 meq/g으로 Nafion 117 보다 우수하였다. 막의 전기저항은 설폰화 시간이 증가함에 따라 감소하였고 그 값은 0.58~0.06 ${\Omega}{\cdot}cm^2$로 측정되었다. 또한 막의 수소이온전도도는 설폰화 시간이 증가함에 따라 증가하였으며 최대 0.099 S/cm로 Nafion 117 보다 우수하였다.

술폰화된 폴리에테르에테르케톤 및 산도핑 ABPBI 고분자 전해질막 제조와 고분자전해질연료전지 응용을 위한 MEA 개발 (Preparation of Sulfonated Poly(Ether Ether Ketone) and Acid-Doped ABPBI Polymer Electrolyte Membranes and Development of Their MEA for Polymer Electrolyte Membrane Fuel Cells)

  • 박진수;;양태현;박구곤;임성대;윤영기;이원용;김창수
    • 한국전기화학회:학술대회논문집
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    • 한국전기화학회 2005년도 수소연료전지공동심포지움 2005논문집
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    • pp.83-86
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    • 2005
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공유가교 CL-SPEEK/Cs-TSiA/Ceria 복합막의 고온 수전해 성능 (High Temperature Water Electrolysis of Covalently Cross-linked CL-SPEEK/Cs-TSiA/Ceria Composite Membrane)

  • 정혜영;윤대진;정장훈;문상봉
    • 한국수소및신에너지학회논문집
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    • 제28권5호
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    • pp.433-439
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    • 2017
  • The high temperature performance of PEM type electrolyser at $120^{\circ}C$ based on covalently cross-linked sulfonated poly ether ether ketone (SPEEK) composie membrane was investigated. Ion conductivity and other properties of SPEEK membrane were improved by adding heteropoly acid and Ceria. The membrane electrode assemblies were prepared using commercial PtC and nano-sized $IrRuO_2$ catalyst by electro-spraying and decal process. Voltage efficiency of MEA equipped with SPEEK membrane was slightly better than that of $Nafion^{(R)}$ membrane, due to its higher proton conductivity at high temperature. The cell performance of MEA with CL-SPEEK/Cs-TSiA/Ceria is 1.71 V at $1A/cm^2$ and $120^{\circ}C$.

일체형 재생연료전지 적용을 위한 sGO 함량 변화에 따른 sGO/sPEEK 복합막의 특성 평가 (The Effect of sGO Content in sPEEK/sGO Composite Membrane for Unitized Regenerative Fuel Cell)

  • 정호영;김민우;임지훈;최진혁;노성희
    • KEPCO Journal on Electric Power and Energy
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    • 제2권1호
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    • pp.127-131
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    • 2016
  • Polymer electrolyte membrane for unitized regenerative fuel cells requires high proton conductivity, high dimensional stability, low permeability, and low cost. However, DuPont's Nafion which is a commercial polymer electrolyte membrane has high permeability, high cost, and decreasing proton conductivity and dimensional stability over $80^{\circ}C$. To address these problems, sulfonated poly ether ether ketone (sPEEK) which is a low cost hydrocarbon polymer is selected as matrix polymer for the preparation of polymer electrolyte membrane. In addition, composite membrane with improved proton conductivity and dimensional stability is prepared by introducing sulfonated graphene oxide (sGO). The fundamental properties of polymer electrolyte membranes are analyzed by investigating membrane's water content, dimensional stability, proton conductivity, and morphology. The cell test is conducted to consider the possibility of application of sPEEK/sGO composite membrane for an unitized regenerative fuel cell.

Preparation and Characterization of Sulfonated Poly(phthalazinone ether sulfone ketone) (SPPESK)/Silica Hybrid Membranes for Direct Methanol Fuel Cell Applications

  • Kim, Dae-Sik;Shin, Kwang-Ho;Park, Ho-Bum;Lee, Young-Moo
    • Macromolecular Research
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    • 제12권4호
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    • pp.413-421
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    • 2004
  • Sulfonated poly(phthalazinone ether sulfone ketone) (SPPESK) membranes and sol-gel derived SPPESK/silica hybrid membranes have been investigated as potential polymer electrolyte membranes for direct methanol fuel cell (DMFC) applications. In comparison with the SPPESK membrane, the SPPESK/silica membranes exhibited higher water content, improved proton conductivity, and lower methanol permeability. Notably, the silica embedded in the membrane acted as a material for reducing the fraction of free water and as a barrier for methanol transport through the membrane. From the results of proton conductivity and methanol permeability studies, we suggest that the fractions of bound and free water should be optimized to obtain desirable proton conductivities and methanol permeabilities. The highly sulfonated PPESK hybrid membrane (HSP-Si) displayed higher proton conductivity (3.42 ${\times}$ 10$^2$ S/cm) and lower methanol permeability (4.15 ${\times}$ 10$\^$7/ $\textrm{cm}^2$/s) than those of Nafion 117 (2.54 ${\times}$ 10$^2$ S/cm; 2.36 ${\times}$ 10$\^$6/ $\textrm{cm}^2$/s, respectively) at 30$^{\circ}C$. This characteristic of the SPPESK/silica membranes is desirable for future applications related to DMFCs.

Novel Sulfonated Poly(arylene ether ketone) Containing Benzoxazole Membranes for Proton Exchange Membrane Fuel Cell

  • Li Jin-Huan;Lee Chang-Hyun;Park Ho-Bum;Lee Young-Moo
    • Macromolecular Research
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    • 제14권4호
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    • pp.438-442
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    • 2006
  • Novel sulfonated poly(aryl ether ketones) containing benzoxazole were directly synthesized by aromatic nucleophilic polycondensation using various ratios of 2,2'-bi[2-( 4-flurophenyl)benzoxazol-6-yl]hexafluoropropane to sodium 5,5'-carbonylbis(2-fluorobenzenesulfonate). The copolymers were soluble in polar aprotic solvents such as N-methyl-2-pyrrolidone, N,N-dimethylacetamide, and N,N-dimethylformamide at a relatively high solid composition (>15 wt%) and formed tough, flexible and transparent membranes. The membranes exhibited a degradation temperature of above $290^{\circ}C$. The exact dissolution times of these membranes at $80^{\circ}C$ in Fenton's reagent (3 wt% $H_2O_2$ containing 2 ppm $FeSO_4$) were undetectable, confirming their excellent chemical stability in fuel cell application. The membranes showed a moderate increase in water uptake with respect to increasing temperature. The proton conductivities of the membranes were dependent on the composition and ranged from $1.10{\times}10^{-2}$ to $5.50{\times}10^{-2}Scm^{-1}$ at $80^{\circ}C$ and 95% relative humidity (RH). At $120^{\circ}C$ without externally humidified conditions, the conductivities increased above $10^{-2}Scm^{-1}$ with respect to increasing benzoxazole content, which suggested that the benzoxazole moieties contributed to the proton conduction.

Synthesis and Characterization of Branched Sulfonated Poly(Ether Sulfone-ketone) Copolymer and Organic-inorganic Nano Composite Membranes

  • Lee, Dong-Hoon;Park, Hye-Suk;Seo, Dong-Wan;Hong, Tae-Whan;Ur, Soon-Chul;Kim, Whan-Gi
    • 한국분말야금학회:학술대회논문집
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    • 한국분말야금학회 2006년도 Extended Abstracts of 2006 POWDER METALLURGY World Congress Part 1
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    • pp.489-490
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    • 2006
  • Branched sulfonated poly(ether sulfone-ketone) copolymer was prepared with bisphenol A, 4,4-difluorobenzophenone, sulfonated chlorophenyl sulfone (40mole% of bisphenol A) and THPE (1,1,1-tris-p-hydroxyphenylethane). THPE was used 0.4 mol% of bisphenol A to synthesize branched copolymers. Organic-inorganic nano composite membranes were prepared with copolymer and a series of $SiO_2$ nanoparticles (20 nm, 4, 7 and 10 wt%). The composite membranes were cast from dimethylsulfoxide solutions. The films were converted from the salt to acid forms with dilute hydrochloric acid. The membranes were studied by differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA). Sorption experiments were conducted to observe the interaction of sulfonated polymers with water and methanol. Branched copolymer and nano composite membranes exhibit proton conductivities from $1.12{\times}10^{-3}$ to $6.04{\times}10^{-3}\;S/cm^2$, water uptake from 52.9 to 62.4%, IEC from 0.81 to 1.21 meq/g and methanol diffusion coefficients from $1.2{\times}10^{-7}$ to $1.5{\times}10^{-7}\;cm^2/S$.

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직접 불소화에 의해 표면 개질된 SPEEK/APSf, SPEEK/APEI 바이폴라막을 이용한 차아염소산나트륨 생성 (Hypochlorite Production by Using SPEEK/APSf and SPEEK/APEI Bipolar Membranes Modified by the Direct Fluorination)

  • 김가영;정성일;임지원
    • 멤브레인
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    • 제25권5호
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    • pp.447-455
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    • 2015
  • 본 연구에서는 Polysulfone (PSf), Polyetherimide (PEI)를 각각 비율을 달리하여 아민화하였고, Polyether ether ketone (PEEK)을 설폰화하였다. 합성한 두 이온교환고분자를 더블캐스팅방법으로 SPEEK (sulfonated PEEK)/APSf (aminated PSf) 및 SPEEK/APEI (aminated PEI) 바이폴라막을 제조하였다. 각각의 막 표면을 불소화하고, 아민화 비율에 따라 차아염소산나트륨발생량을 비교하였다. 아민화 비율이 증가할수록 차아염소산나트륨 발생 농도 또한 증가하였다. SPEEK/APSf 3 : 1 막의 경우 불소화 전의 차아염소산나트륨 농도와 총 운전시간은 61.0 ppm, 220 min이고, 불소화한 막의 경우 58.6 ppm, 570 min이다. 또한 SPEEK/APEI 3 : 1 막에서 역시 불소화 전후의 차아염소산나트륨 농도는 각각 60.1 ppm, 58.3 ppm이고, 총 운전시간은 150 min에서 440 min으로 내구성이 크게 향상되었다. 따라서 표면 불소화가 막의 내구성에 중요한 역할을 한다고 사료된다.

고분자전해질연료전지에서 폴리이미드 강화 sPEEK막 MEA의 내구성 (Durability of MEA Using sPEEK Membrane Reinforced with Poly Imide in PEMFC)

  • 이혜리;나일채;오성준;박권필
    • Korean Chemical Engineering Research
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    • 제55권3호
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    • pp.296-301
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    • 2017
  • 최근에 저가의 고분자 전해질 연료전지(Proton Exchange Membrane Fuel Cells, PEMFC)용 비불소계 전해질 막 연구 개발이 활발히 진행되고 있다. 본 연구에서는 sulfonated poly (ether ether ketone) (sPEEK) 막의 내구성을 증가시키기 위해 PI 지지체를 이용한 강화 막을 제조하였다. 단일(비강화) 막전극합체(MEA)와 강화막 MEA의 내구성을 시험하기 위해 열화 가속화 기법을 이용하여 MEA 열화 실험을 진행하였다. 열화 전과 후에 I-V 분극곡선, 수소투과도, 전극 활성 면적, 막 저항과 부하 전달 저항을 측정하여 열화 전과 후를 비교하였다. 그 결과, 강화 MEA가 단일 MEA에 비해 수소투과전류밀도가 낮으며, 내구성이 높음을 확인하였다. 특히 열화 후 강화 MEA에서는 단일 MEA에서 나타난 쇼트 현상이 나타나지 않았다.