How the Porous Transport Layer Interface Affects Catalyst Utilization and Performance in Polymer Electrolyte Water Electrolysis

被引:27
|
作者
Weber, Carl Cesar [1 ]
Wrubel, Jacob A. [2 ]
Gubler, Lorenz [1 ]
Bender, Guido [2 ]
De Angelis, Salvatore [1 ]
Buchi, Felix N. [1 ]
机构
[1] Paul Scherrer Inst, Electrochem Lab, CH-5232 Villigen, Switzerland
[2] Natl Renewable Energy Lab, Golden, CO 80401 USA
关键词
hydrogen; PEM electrolysis; polymer electrolytewater electrolysis; active catalyst layer; poroustransport layer; interface PTL; CL; catalyst utilization; iridium loading; LIQUID/GAS DIFFUSION LAYERS; STRUCTURAL-PROPERTIES; MEMBRANE; MICROSTRUCTURE; EVOLUTION; TOMOGRAPHY; EFFICIENCY; CELLS;
D O I
10.1021/acsami.3c04151
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Cost reduction andfast scale-up of electrolyzer technologies areessential for decarbonizing several crucial branches of industry.For polymer electrolyte water electrolysis, this requires a dramaticreduction of the expensive and scarce iridium-based catalyst, makingits efficient utilization a key factor. The interfacial propertiesbetween the porous transport layer (PTL) and the catalyst layer (CL)are crucial for optimal catalyst utilization. Therefore, it is essentialto understand the relationship between this interface and electrochemicalperformance. In this study, we fabricated a matrix of two-dimensionalinterface layers with a well-known model structure, integrating themas an additional layer between the PTL and the CL. By characterizingthe performance and conducting an in-depth analysis of the overpotentials,we were able to estimate the catalyst utilization at different currentdensities, correlating them to the geometric properties of the modelPTLs. We found that large areas of the CL become inactive at increasingcurrent density either due to dry-out, oxygen saturation (under thePTL), or the high resistance of the CL away from the pore edges. Weexperimentally estimated the water penetration in the CL under thePTL to be & AP;20 & mu;m. Experimental results were corroboratedusing a 3D-multiphysics model to calculate the current distributionin the CL and estimate the impact of membrane dry-out. Finally, weobserved a strong pressure dependency on performance and high-frequencyresistance, which indicates that with the employed model PTLs, a significantgas phase accumulates in the CL under the lands, hindering the distributionof liquid water. The findings of this work can be extrapolated toimprove and engineer PTLs with advanced interface properties, helpingto reach the required target goals in cost and iridium loadings.
引用
收藏
页码:34750 / 34763
页数:14
相关论文
共 50 条
  • [21] On the influence of porous transport layers parameters on the performances of polymer electrolyte membrane water electrolysis cells
    Pushkarev, A. S.
    Pushkareva, I., V
    Solovyev, M. A.
    Prokop, M.
    Bystron, T.
    Rajagopalan, S. K.
    Bouzek, K.
    Grigoriev, S. A.
    ELECTROCHIMICA ACTA, 2021, 399
  • [22] Low-cost porous transport layers for water electrolysis cells with polymer electrolyte membranes
    Wakayama, Hiroaki
    MATERIALS RESEARCH EXPRESS, 2024, 11 (08)
  • [23] Preparation of hydrophobic electrocatalyst layer and inorganic porous electrolyte layer for water absorbing porous electrolyte electrolysis cell
    Terayama, Yuki
    Furukawa, Shoichi
    Nomura, Munemitsu
    Haji, Takamasa
    Nishihara, Masamichi
    Mendoza, Omar
    Sone, Yoshitsugu
    Matsumoto, Hiroshige
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (27) : 11903 - 11912
  • [24] Porous transport layer influence on overpotentials in PEM water electrolysis at low anode catalyst loadings
    Hasa, Bjorn
    Aryal, Utsav Raj
    Higashi, Shougo
    Tolouei, Nadia Ebrahimpour
    Lang, Jack T.
    Erb, Bryan
    Smeltz, Andrew
    V. Zenyuk, Iryna
    Zhu, Gaohua
    APPLIED CATALYSIS B-ENVIRONMENT AND ENERGY, 2025, 361
  • [25] A cocrystallized catalyst-coated membrane with high performance for solid polymer electrolyte water electrolysis
    Wang, Xunying
    Shao, Zhi-Gang
    Li, Guangfu
    Zhang, Linsong
    Zhao, Yun
    Lu, Wangting
    Yi, Baolian
    JOURNAL OF POWER SOURCES, 2013, 240 : 525 - 529
  • [26] Ionomer Binder in Catalyst Layer for Polymer Electrolyte Membrane Fuel Cell and Water Electrolysis: An Undated Review
    Park, Jong-Hyeok
    Akter, Mahamuda
    Kim, Beom-Seok
    Jeong, Dahye
    Lee, Minyoung
    Shin, Jiyun
    Park, Jin-Soo
    JOURNAL OF THE KOREAN ELECTROCHEMICAL SOCIETY, 2022, 25 (04): : 174 - 183
  • [27] Evaluation of the Performance of Platinum Plated Titanium Porous Transport Layer for PEM Water Electrolysis
    Minoura, Ayumu
    Kumagai, Masanobu
    Yashiro, Hitoshi
    Ota, Hiroki
    Zairyo to Kankyo/ Corrosion Engineering, 2024, 73 (03): : 61 - 65
  • [28] Wettability and wettability modification methods of porous transport layer in polymer electrolyte membrane electrolysis cells (PEMEC): A review
    Liu, Jianxin
    Liu, Zongqi
    Zhang, Xiaolei
    Gulizhaina, Habudula
    Chai, Xuedi
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (69) : 26629 - 26651
  • [29] Performance degradation analysis of solid polymer electrolyte water electrolysis
    Li W.
    Xie X.
    Wang S.
    Huagong Jinzhan/Chemical Industry and Engineering Progress, 2020, 39 (S2): : 168 - 174
  • [30] A novel catalyst layer with hydrophilic-hydropholbic meshwork and pore structure for solid polymer electrolyte water electrolysis
    Xu, Junyuan
    Miao, Ruiying
    Zhao, Tingting
    Wu, Jun
    Wang, Xindong
    ELECTROCHEMISTRY COMMUNICATIONS, 2011, 13 (05) : 437 - 439