Study of pH Gradients and Carbonation of Hydroxide Exchange Membrane Electrolyzers

被引:0
|
作者
Oliveira, Alexandra M. [1 ,2 ]
Setzler, Brian P. [1 ,2 ]
Yan, Yushan [1 ,2 ]
机构
[1] Univ Delaware, Ctr Clean Hydrogen, Newark, DE 19716 USA
[2] Univ Delaware, Dept Chem & Biomol Engn, Newark, DE 19716 USA
基金
美国国家科学基金会;
关键词
anion exchange membrane electrolyzers; electrochemical engineering; carbonation; electrolysis; DIOXIDE; CO2; CONDUCTIVITY; PERFORMANCE; EFFICIENCY; ALKALINE;
D O I
10.1149/1945-7111/adb51d
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Hydroxide exchange membrane electrolyzers (HEMELs) can produce hydrogen at scale with high efficiencies. However, like their HEM fuel cell counterparts, the alkaline membrane and ionomer of HEMELs may be susceptible to CO2 contamination and cause performance losses. CO2 can form (bi)carbonates which increase ohmic resistances due to their reduced conductivity compared to hydroxide. More importantly, the potential gradient across the membrane drives a self-purging mechanism which can lower the anode pH, causing thermodynamic overpotentials. We used modeling and experiments to study these phenomena in HEMELs in order to understand CO2 -related losses through the conductivity and pH effects of different CO2 concentrations over a range of current densities. We found that pH gradients are the more significant barrier to cell performance and controlled them using three supporting electrolytes. We found that operating HEMELs at high current densities >1000 mA cm( )(-2)can recover >200 mV of overpotential due to self-purging of (bi)carbonates, but there is still some unrecoverable overpotential from the generated pH gradients. KOH electrolytes can be used to reduce this pH gradient, but K2CO3 and KHCO(3 )supporting electrolytes are susceptible to the same detrimental effects of carbonation and should not be used to minimize CO2 contamination.
引用
收藏
页数:9
相关论文
共 50 条
  • [41] Initial approaches in benchmarking and round robin testing for proton exchange membrane water electrolyzers
    Bender, G.
    Carmo, M.
    Smolinka, T.
    Gago, A.
    Danilovic, N.
    Mueller, M.
    Ganci, F.
    Fallisch, A.
    Lettenmeier, P.
    Friedrich, K. A.
    Ayers, K.
    Pivovar, B.
    Mergel, J.
    Stolten, D.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (18) : 9174 - 9187
  • [42] Advanced Ir-Based Alloy Electrocatalysts for Proton Exchange Membrane Water Electrolyzers
    Yang, Yuan
    Chen, Dongfang
    Hu, Song
    Pei, Pucheng
    Xu, Xiaoming
    SMALL, 2025, 21 (08)
  • [43] Exploring the Impacts of Conditioning on Proton Exchange Membrane Electrolyzers by In Situ Visualization and Electrochemistry Characterization
    Wang, Weitian
    Li, Kui
    Ding, Lei
    Yu, Shule
    Xie, Zhiqiang
    Cullen, David A.
    Yu, Haoran
    Bender, Guido
    Kang, Zhenye
    Wrubel, Jacob A.
    Ma, Zhiwen
    Capuano, Christopher B.
    Keane, Alex
    Ayers, Kathy
    Zhang, Feng-Yuan
    ACS APPLIED MATERIALS & INTERFACES, 2022, 14 (07) : 9002 - 9012
  • [44] High-performance porous transport layers for proton exchange membrane water electrolyzers
    Tao, Youkun
    Wu, Minhua
    Hu, Meiqi
    Xu, Xihua
    Abdullah, Muhammad I.
    Shao, Jing
    Wang, Haijiang
    SUSMAT, 2024, 4 (04):
  • [45] Effect of porous transport layer properties on the anode electrode in anion exchange membrane electrolyzers
    Ul Hassan, Noor
    Motyka, Elaine
    Kweder, Jonathan
    Ganesan, Prabhu
    Brechin, Bryce
    Zulevi, Barr
    Colon-Mercado, Hector R.
    Kohl, Paul A.
    Mustain, William E.
    JOURNAL OF POWER SOURCES, 2023, 555
  • [46] Carbon Nitride Materials as Efficient Catalyst Supports for Proton Exchange Membrane Water Electrolyzers
    Jorge, Ana Belen
    Dedigama, Ishanka
    Miller, Thomas S.
    Shearing, Paul
    Brett, Daniel J. L.
    McMillan, Paul F.
    NANOMATERIALS, 2018, 8 (06):
  • [47] Experimental study on the degradation of proton exchange membrane water electrolyzers under different dynamic loads and flow field configurations
    He, Dandi
    Chen, Ke
    Chen, Wenshang
    Luo, Zhongkai
    Xiong, Zhongzhuang
    Zou, Guofu
    Li, Guangfu
    Chen, Ben
    JOURNAL OF POWER SOURCES, 2025, 641
  • [48] Computational multi-physics modeling of membranes in proton exchange membrane water electrolyzers
    Antonini, Alberto
    Heider, Yousef
    Xotta, Giovanna
    Salomoni, Valentina
    Aldakheel, Fadi
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2025, 441
  • [49] Hierarchically Structured Ultraporous Iridium-Based Materials: A Novel Catalyst Architecture for Proton Exchange Membrane Water Electrolyzers
    Faustini, Marco
    Giraud, Marion
    Jones, Deborah
    Roziere, Jacques
    Dupont, Marc
    Porter, Thomas R.
    Nowak, Sophie
    Bahri, Mounib
    Ersen, Ovidiu
    Sanchez, Clement
    Boissiere, Cedric
    Tard, Cedric
    Peron, Jennifer
    ADVANCED ENERGY MATERIALS, 2019, 9 (04)
  • [50] Rational electrode design for low-cost proton exchange membrane water electrolyzers
    Yuan, Shu
    Zhao, Congfan
    Li, Huiyuan
    Shen, Shuiyun
    Yan, Xiaohui
    Zhang, Junliang
    CELL REPORTS PHYSICAL SCIENCE, 2024, 5 (03):