• 제목/요약/키워드: Heteropoly acid (HPA)

검색결과 5건 처리시간 0.026초

One-Pot Fischer Indole 화합물의 효율적인 합성 (Highly Efficient and Facile Green Approach for One-Pot Fischer Indole Synthesis)

  • Chaskar, Atul;Deokar, Hrushikesh;Padalkar, Vikas;Phatangare, Kiran;Patil, S.K.
    • 대한화학회지
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    • 제54권4호
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    • pp.411-413
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    • 2010
  • HPA-phosphomolybdic acid 촉매 하에서, 아릴히드라진과 알데히드/케톤을 반응시켜서 치환기를 가지고 있는 indole 화합물을 효율적으로 합성할 수 있는 친환경적인 합성 방법을 개발하였으며, 이때 촉매는 독성이 없으며, 회수하여 재 사용할 수 있다.

Electrospun $SiO_2$ membrane using covalently cross-linked SPEEK/HPA by impregnation for high temperature PEMFC

  • 나희수;황형권;이찬민;설용건
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 추계학술대회 초록집
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    • pp.85.2-85.2
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    • 2010
  • There is widespread effort to develop polymer membranes in place of Nafion for high temperature polymer electrolyte membrane fuel cell(PEMFC). In our study, SiO2 membranes are arranged by electrospinning method. For impregnation solution, the modified sulfonated poly(ether ether ketone)(SPEEK) polymer is prepared from sulfonation, sulfochlorination, partial reduction and lithiation reaction. The modified polymer is cross-linked with 1,4-diiodobetane in NMP solvent and then blended with Heteropoly acid(HPA). The characterization of membranes is confimed by FT-IR, Thermogravimetry(TGA), water uptake test and single cell performance test for PEMFC, etc. The composite membrane shows satisfactory thermal and mechanical properties. Beside, The membrane exhibits good ion exchange capacity and high proton conductivity. As a result, The composite membrane is promising as an alternative membrane in high temperature PEMFC.

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수전해용 공유가교 SPEEK/HPA 복합막의 제조 및 물리화학적 특성 (The Preparation and Physicochemical Characteristics of Covalently Cross-Linked SPEEK/HPA Composite Membranes for Water Electrolysis)

  • 황용구;이광문;우제영;정장훈;문상봉;강안수
    • 한국수소및신에너지학회논문집
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    • 제20권2호
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    • pp.95-103
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    • 2009
  • In order to improve the electrochemical, mechanical and electrocatalytic characteristics, engineering plastic of polyether ether ketone (PEEK) as polymer matrix was sulfonated (SPEEK) and the organic-inorganic blend composite membranes has been prepared by loading heteropoly acids (HPAs), including tungstophosphoric acid (TPA), molybdophosphoric acid (MoPA), and tungstosilicic acid (TSiA). And then these were covalently cross-linked (CL-SPEEK/HPA) as the electrolyte and MEA of polymer electrolyte membrane electrolysis (PEME). As a result, the optimum reaction conditions of CL-SPEEK/HPA was established and the electrochemical characteristics such as ion conductivity ($\sigma$) were in the order of magnitude: CL-SPEEK /TPA30 (${\sigma}=0.128\;S/cm^{-1}$) < /MoPA40 (${\sigma}=0.14\;S/cm^{-1})$ < /TSiA30 (${\sigma}=0.22\;S/cm^{-1}$) at $80^{\circ}C$, and mechanical characteristics such as tensile strength: CL-SPEEK /TSiA30 $\fallingdotseq$ /MoPA40 < /TPA30. Consequently, in regards of above characterisitics and oxidation durability, the CL-SPEEK/TPA30 exhibited a better performance in PEME than the others, but CL-SPEEK/MoPA40 showed the best electrocatalytic activity of cell voltage 1.71 V among the composite membranes. The dual effect of higher proton conductivity and electrocatalytic activity with the addition of HPAs, causes a synergy effect.

$Cs^+$치환에 따른 수전해용 공유가교 SPEEK/HPA 복합막의 안정화 (Stabilization of Covalently Cross-Linked SPEEK/Cs-Substituted HPA Composite Membranes for Water Electrolysis)

  • 지봉철;하성인;송민아;정장훈;문상봉;강안수
    • 한국수소및신에너지학회논문집
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    • 제22권1호
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    • pp.1-12
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    • 2011
  • To improve the mechanical properties, such as durabilities and antioxidative characteristics, the covalently cross-linked (CL-) SPEEK (sulfonated polyether ether ketone)/Cs-substituted HPA (heteropoly acid) organic-inorganic composite membranes (CL-SPEEK/Cs-HPAs), have been intensively investigated. The composite membrane were prepared by blending cesium-substituted HPAs (Cs-HPAs), including tungstophosphoric acid (TPA), molybdophosphoric acid (MoPA), and tungstosilicic acid (TSiA) with cross-linking agent content of 0.01 mL. And composite electrolytes composed of Cs-HPAs, prepared by immersion (imm.) and titration (titr.) methods to increase the stability of HPAs in water, were applied to polymer electrolyte membrane electrolysis (PEME). As a result, the proton conductivity of Cs-substituted composite membranes increased rapidly over $60^{\circ}C$ but mechanical properties, such as tensile strength, decreased in accordance with added Cs content. The bleeding-out of Cs-TPA membranes by titration method (50 vol.% Cs) decreased steadily to 2.15%. In the oxidative stability test by Fenton solution, the durability of membranes with Cs-HPA significantly increased. In case of CL-SPEEK/ Cs-TPA membrane, duration time increased more than 1200 hours. It is expected that even though CL-SPEEK/Cs-MoPA membrane shows the high proton conductivity, electrocatalytic activity and cell voltage of 1.80 V for water electrolysis, the CL-SPEEK/Cs-TPA (imm.) is more suitable as an alternative membrane in real system with the satisfactory proton conductivity, mechanical properties, anti-oxidative stability and cell voltage of 1.89 V.

Keggin형 헤테로폴리산 촉매를 이용한 선박용 경유의 산화 탈황 (Oxidative Desulfurization of Marine Diesel Using Keggin Type Heteropoly Acid Catalysts)

  • 오현우;우희철
    • 청정기술
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    • 제25권1호
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    • pp.91-97
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    • 2019
  • 산화탈황반응은 디벤조티오펜(dibenzothiophenes, DBTs)과 같이 제거하기 어려운 구조의 황화합물들을 선택적으로 산화하여 설폭사이드(sulfoxide)와 설폰(sulfone) 등의 형태로 전환하고, 이들을 추출과 흡착에 의해 제거할 수 있기 때문에 최근 많은 주목을 받고 있다. 본 연구에서는 선박용 경유의 산화탈황반응을 회분식반응기에서 산화제 과산화수소($H_2O_2$)와 함께 다양한 헤테로폴리산 담지촉매에 의해 수행하였다. 제조 촉매들은 X-선 회절분석(XRD), X-선 형광분석(XRF), X-선 광전자분광분석(XPS) 및 질소 흡착등온선 등의 기법에 의해 특성분석이 이루어졌다. 유망한 지지체인 실리카에 30 wt% 담지된 헤테로폴리산 촉매 활성 순위는 황 제거율 기준으로, $30\;H_3PW_{12}/SiO_2$ > $30\;H_3PMo_{12}/SiO_2$ > $30\;H_4SiW_{12}/SiO_2$ 순으로 나타났으며, 이는 헤테로폴리산의 고유 산세기에 기인한 것으로 판단된다. $30\;H_3PW_{12}/SiO_2$ 촉매는 반응 온도 $30^{\circ}C$, 촉매량 $0.025g\;mL^{-1}$ (cat./oil), 반응 시간 1 h의 반응조건 하에서 약 66%의 가장 높은 초기 황 제거율을 보였다. 그러나 $H_3PW_{12}/SiO_2$ 촉매의 재사용성 실험을 통해 확연하게 활성이 저하됨을 확인하였으며 이는 활성 성분인 $H_3PW_{12}$의 용출에 기인한 것으로 보인다. $H_3PW_{12}/SiO_2$ 촉매로의 세슘 양이온($Cs^+$) 도입에 의한 용해도의 변화와 함께 촉매의 안정성이 개선되었으며, $Cs^+$ 이온교환 된 촉매는 최소 5회 이상 재사용이 가능함을 확인하였다.