Electrochemical Measurement of Water Transport Numbers in Anion-Exchange Membranes

被引:4
作者
Petrovick, John G. [1 ,2 ]
Kushner, Douglas I. [2 ]
Goyal, Priyamvada [2 ]
Kusoglu, Ahmet [2 ]
Radke, Clayton J. [1 ]
Weber, Adam Z. [2 ]
机构
[1] Univ Calif Berkeley, Dept Chem & Biomol Engn, Berkeley, CA USA
[2] Lawrence Berkeley Natl Lab, Energy Technol Area, Berkeley, CA 94720 USA
关键词
fuel cells - PEM; electroanalytical electrochemistry; electrochemical engineering; fuel cells; membranes and separators; ELECTROOSMOTIC DRAG COEFFICIENT; POLYMER-ELECTROLYTE MEMBRANES; FUEL-CELLS; ELECTRICAL-CONDUCTIVITY; MODELING TRANSPORT; NAFION MEMBRANE; SULFONIC-ACID; HYDROXYL IONS; PROTON; SOLVATION;
D O I
10.1149/1945-7111/ad09f9
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Anion-exchange membranes (AEMs) are a possible replacement for perfluorosulfonic-acid membranes in energy-conversion devices, primarily due to the hydroxide mobile ion allowing the devices to operate in alkaline conditions with less expensive electrocatalysts. However, the transport properties of AEMs remain understudied, especially electro-osmosis. In this work, an electrochemical technique, where the open-circuit voltage is measured between two ends of a membrane maintained at different relative humidities, is used to determine the water transport number of various ionomers, including Versogen and Sustainion AEMs and Nafion cation-exchange membrane (CEM), as a function of water content and temperature. In addition, the CEMs and AEMs are examined in differing single-ion forms, specifically proton and sodium (CEM) and hydroxide and carbonate (AEM). Carbonate-form AEMs have the highest transport number (similar to 11), followed by sodium-form CEMs (similar to 8), hydroxide-form AEMs (similar to 6), and proton-form CEMs (similar to 3). Finally, a multicomponent transport model based on the Stefan-Maxwell-Onsager framework of binary interactions is used to develop a link between water transport number and water-transport properties, extracting a range for the unmeasured membrane water permeability of Versogen as a function of water content.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Polymer Backbone Chemistry Shapes the Alkaline Stability of Metallopolymer Anion-Exchange Membranes
    Aggarwal, Kanika
    Li, Songlin
    Nijem, Sally
    Dekel, Dario R.
    Diesendruck, Charles E.
    [J]. CHEMISTRY-A EUROPEAN JOURNAL, 2024, 30 (20)
  • [32] Anion-Exchange Membranes for Alkaline Fuel-Cell Applications: The Effects of Cations
    Sun, Zhe
    Lin, Bencai
    Yan, Feng
    [J]. CHEMSUSCHEM, 2018, 11 (01) : 58 - 70
  • [33] Relaxation phenomena and conductivity mechanisms in anion-exchange membranes derived from polyketone
    Vezzu, Keti
    Nawn, Graeme
    Pagot, Gioele
    Negro, Enrico
    Nale, Angeloclaudio
    Bang, Yannick Herve
    Conti, Fosca
    Cavinato, Gianni
    Di Noto, Vito
    [J]. ELECTROCHIMICA ACTA, 2019, 319 : 253 - 263
  • [34] Tuning the Performance of Poly(quaterphenyl piperidinium) Anion-Exchange Membranes by Monomer Configuration
    Bakvand, Pegah Mansouri
    Pan, Dong
    Allushi, Andrit
    Jannasch, Patric
    [J]. ADVANCED ENERGY MATERIALS, 2024,
  • [35] Effects of structure and chemistry on electrochemical transport properties of anion exchange membranes for separation of CO2
    Schwartz, Nicholas
    Harrington, Jason
    Ziegler, Kirk
    Cox, Philip
    [J]. SEPARATION SCIENCE AND TECHNOLOGY, 2023, 58 (01) : 212 - 219
  • [36] Nanocomposite membranes based on quaternized polysulfone and functionalized montmorillonite for anion-exchange membranes
    Liao, Xiaofeng
    Ren, Li
    Chen, Dongzhi
    Liu, Xiaohong
    Zhang, Hongwei
    [J]. JOURNAL OF POWER SOURCES, 2015, 286 : 258 - 263
  • [37] Experimental characterization of actuation of anion-exchange membranes in salt solution
    Ulbricht, Nicco
    Boldini, Alain
    Bae, Chulsung
    Wallmersperger, Thomas
    Porfiri, Maurizio
    [J]. ELECTROACTIVE POLYMER ACTUATORS AND DEVICES, EAPAD XXV, 2023, 12482
  • [38] Potential technology for seawater electrolysis: Anion-exchange membrane water electrolysis
    Wang, Yanjiao
    Wang, Min
    Yang, Yuqing
    Kong, Deyu
    Meng, Chao
    Zhang, Dongqing
    Hu, Han
    Wu, Mingbo
    [J]. CHEM CATALYSIS, 2023, 3 (07):
  • [39] Cycloaliphatic Quaternary Ammonium Functionalized Poly(oxindole biphenyl) Based Anion-Exchange Membranes for Water Electrolysis: Stability and Performance
    Gjoshi, Sara
    Loukopoulou, Paraskevi
    Plevova, Michaela
    Hnat, Jaromir
    Bouzek, Karel
    Deimede, Valadoula
    [J]. POLYMERS, 2024, 16 (01)
  • [40] Hydrogen Production by water Electrolysis with an Ultrathin Anion-exchange membrane (AEM)
    Vincent, Immanuel
    Kruger, Andries
    Bessarabov, Dmitri
    [J]. INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE, 2018, 13 (12): : 11347 - 11358