• Title/Summary/Keyword: 자막 교환

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Measurement Technique of Membrane Fouling in Processes Utilizing Ion-Conducting Polymer Membranes (이온전도성 고분자막 활용 공정에서의 막 오염 현상 측정 기술)

  • Han, Soo-Jin;Park, Jin-Soo
    • Membrane Journal
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    • v.27 no.5
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    • pp.434-440
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    • 2017
  • Electrical impedance spectroscopy is used to detect membrane fouling in-situ in reverse electrodialysis. The impedance data for the AMX membrane being fouled in the reverse electrodialysis are plotted and analyzed by Nyquist and admittance method. The meaningful graphical analyses for the fouling phenomena could be done by both Nyquist and admittance method. In addition, the unstable initial fouling stage was identified by the admittance data with high standard deviation, and the structural change of the fouling layer formed at the surface of anion-exchange membranes with the operation time of reverse electrodialysis was also detected.

Molecular Dynamics Simulations on Catalyst Layers of Polymer Electrolyte Membrane Fuel Cell (고분자 전해질막 연료전지 전극층에서의 분자동역학 연구)

  • Kang, Haisu;Kwon, Sung Hyun;Lee, Seung Geol
    • Prospectives of Industrial Chemistry
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    • v.24 no.3
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    • pp.14-27
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    • 2021
  • 수소 에너지는 환경 문제를 최소화하고 고갈되는 화석연료를 대체할 수 있는 에너지원으로 각광을 받고 있다. 수소연료전지는 이러한 수소를 에너지원으로 사용하고 수소를 전기에너지로 전환하여 그 부산물로 물을 만드는 대표적인 친환경 전기화학 장치이다. 고분자 전해질막 연료전지는 수소이온교환 특성을 갖는 고분자막을 전해질로 사용하는 연료전지로 막전극집합체의 전극층은 촉매가 포함된 고분자 전해질막 연료전지의 주요 요소 중의 하나이다. 소재개발 측면에서 고분자 전해질막 연료전지 전극층 핵심 소재의 물성 발현 원리 등을 이해하고 최적화된 소재 설계를 위해서는 원자레벨에서의 소재 설계 접근법이 필요하다. 따라서 실험적인 연구가 어려운 부분과 원자단위에서의 물질 현상에 대한 이해 그리고 연구 개발의 효율성 증진을 위해 전산재료과학(computational materials science) 기술이 광범위하게 활용될 수 있다. 본 기고문에서는 고분자 전해질막 연료전지에서의 전극층 소재에 대한 분자동역학 기반의 전산모사 활용과 연구동향에 대하여 소개하고자 한다.

Response Mechanism of 5, 10, 15, 20-tetraphenyl(porphyrinato) Manganase(III) chloride-Based Ion-Selective Membranes (망간포르피린을 함유한 고분자형 이온선택성 막전극의 감응 메카니즘)

  • Hong, Young Ki;Kang, You Ra;Shin, Dae Ho;Shin, Doo Soon;Cha, Geun Sig;Nam, Hakhyun
    • Analytical Science and Technology
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    • v.9 no.3
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    • pp.270-278
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    • 1996
  • Response mechanism for the chloride-selective membrane doped with 5, 10, 15, 20-tetraphenyl(porphyrinato)manganase(III) chloride(Mn(TPP)Cl) in PVC/DOS matrix is proposed by examining the visible spectra of the corresponding optode membrane. The visible spectra of Mn(TPP)Cl-doped membrane placed in aqueous solution show that the chloride ligand is easily replaced with water molecule. When other halogen ions, such as $F^-$, $Br^-$ and $I^-$, are added to the sample solution, they replace the water ligand, exhibiting distinctive change in the Soret band of Mn(TPP). On the other hand, bulky anions, such as SCN and salicylate, do not form a bond with the central metal. These results suggests that the potentiometric response of Mn(TPP)-based membrane results either from the ligand exchange (water with halides) at the central metal or from the counter ion exchange (chlorides with bulky lipophilic anions) around the positively charged porphyrin molecule in membrane phase. It was also noted that both hydration enthalpies of anions and their binding constants to Mn(TPP) play critical role in determining the potentiometric selectivity pattern of the membrane.

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Preparation and Characterizations of poly(arylene ether sulfone)/SiO2 Composite Membranes for Polymer Electrolyte Fuel Cell (고분자 전해질 연료전지(PEFC)용 poly(arylene ether sulfone)/SiO2 복합막의 제조 및 특성분석)

  • Shin, Mun-Sik;Kim, Da-Eun;Park, Jin-Soo
    • Membrane Journal
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    • v.27 no.2
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    • pp.182-188
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    • 2017
  • Sulfonated poly(arylene ether sulfone) (SPAES)-3-mercaptopropyl silica gel (3MPTSG) composite membranes with improved oxidative stability were prepared for polymer electrolyte fuel cell application. It has been reported that ether part of main chain of aromatic hydrocarbon based membranes were weak to radical attack to decrease membrane durability. In this study, the hydrophilic inorganic particles were introduced by minimizing a decrease in ion conductivity and increasing an oxidative stability. The composite membranes were investigated in terms of ionic conductivity, ion exchange capacity (IEC), FT-IR, TGA and contact angle, etc. As a result, increasing amount of the 3MPTSG resulted in decrease in proton conductivities and water uptakes at 100% R.H. but enhanced thermal and oxidative stabilities.

Degradation of Nafion Membrane by Oxygen Radical (산소 라디칼에 의한 Nafion 막의 열화)

  • Kim, Taehee;Lee, Junghun;Cho, Gyoujin;Park, Kwonpil
    • Korean Chemical Engineering Research
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    • v.44 no.6
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    • pp.597-601
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    • 2006
  • The degradation of the Nafion membrane by oxygen radical (OH, $HO_2$) was investigated in Polymer electrolyte membrane fuel cell (PEMFC). Nafion membrane was degraded in Fenton solution consisted with hydrogen peroxide (10-30%) and ferrous ion (1-4 ppm) at $80^{\circ}C$. After degradation in Fenton solution, C-F, S-O and C-O chemical bonds of membrane were broken by oxygen radical attack. Breaking of C-F bond reduced the mechanical strength of Nafion membrane, and hence induced pinholes, resulting in increase of $H_2$ crossover through the membrane. Decomposition of S-O and C-O bonds decreased the ion exchange capacity of the electrolyte membrane. The performance of unit cell composed the membrane, which was degraded in 30% $H_2O_2$ with 4ppm $Fe^{2+}$ solution for 48 hr, was about half times as low as one with normal membrane.