Constructing a Multifunctional Interface between Membrane and Porous Transport Layer for Water Electrolyzers

被引:70
|
作者
Liu, Chang [1 ,2 ]
Wippermann, Klaus [1 ]
Rasinski, Marcin [3 ]
Suo, Yanpeng [1 ,4 ]
Shviro, Meital [1 ]
Carmo, Marcelo [1 ,5 ]
Lehnert, Werner [1 ,2 ]
机构
[1] Forschungszentrum Julich, Inst Energy & Climate Res, IEK 14 Electrochem Proc Engn, D-52425 Julich, Germany
[2] Rhein Westfal TH Aachen, Fac Mech Engn, D-52062 Aachen, Germany
[3] Forschungszentrum Julich, Inst Energie & Klimaforsch Plasmaphys IEK 4, D-52425 Julich, Germany
[4] Rhein Westfal TH Aachen, D-52062 Aachen, Germany
[5] Queens Univ, Mech & Mat Engn, Kingston, ON K7L 3N6, Canada
关键词
PEM water electrolyzers; porous transport layer; porous transport electrode; iridium; sputtering; LIQUID/GAS DIFFUSION LAYERS; POLYMER ELECTROLYTE; ELECTROCHEMICAL CHARACTERIZATION; PEM ELECTROLYZERS; IRIDIUM OXIDE; PERFORMANCE; HYDROGEN; EFFICIENCY; PLATINUM; CELL;
D O I
10.1021/acsami.0c20690
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The cell performance and durability of polymer electrolyte membrane (PEM) water electrolyzers are limited by the surface passivation of titanium-based porous transport layers (PTLs). In order to ensure stable performance profiles over time, large amounts (>= 1 mg.cm(-2)) of noble metals (Au, Pt, Ir) are most widely used to coat titanium-based PTLs. However, their high cost is still a major obstacle toward commercialization and widespread application. In this paper, we assess different loadings of iridium, ranging from 0.005 to 0.05 mg.cm(-2) in titanium PTLs, that consequently affect the investment costs of PEM water electrolyzers. Concerning a reduction in the precious metal costs, we found that Ir as a protective layer with a loading of 0.025 mg. cm(-2) on the PTLs would be sufficient to achieve the same cell performance as PTLs with a higher Ir loading. This Ir loading is a 40-fold reduction over the Au or Pt loading typically used for protective layers in current commercial PEM water electrolyzers. We show that the Ir protective layer here not only decreases the Ohmic resistance significantly, which is the largest part of the gain in performance, but moreover, the oxygen evolution reaction activity of the iridium layer makes it promising as a cost-effective catalyst layer. Our work also confirms that the proper construction of a multifunctional interface between a membrane and a PTL indeed plays a crucial role in guaranteeing the superior performance and efficiency of electrochemical devices.
引用
收藏
页码:16182 / 16196
页数:15
相关论文
共 50 条
  • [21] Effect of Microstructure of Porous Transport Layer on Performance in Polymer Electrolyte Membrane Water Electrolyser
    Majasan, Jude O.
    Iacoviello, Francesco
    Shearing, Paul R.
    Brett, Dan J. L.
    3RD ANNUAL CONFERENCE IN ENERGY STORAGE AND ITS APPLICATIONS (3RD CDT-ESA-AC), 2018, 151 : 111 - 119
  • [22] Toward Understanding Catalyst Layer Deposition Processes and Distribution in Anodic Porous Transport Electrodes in Proton Exchange Membrane Water Electrolyzers
    Bierling, Markus
    McLaughlin, David
    Mayerhoefer, Britta
    Thiele, Simon
    ADVANCED ENERGY MATERIALS, 2023, 13 (13)
  • [23] Probing the mechanistic role of the catalyst layer microstructure in proton exchange membrane water electrolyzers
    Goswami, Navneet
    Ayyaswamy, Abhinand
    Nath, Anindya
    Vishnugopi, Bairav S.
    Mukherjee, Partha P.
    JOURNAL OF MATERIALS CHEMISTRY A, 2025,
  • [24] Effect of porous transport layer wettability on oxygen transportation in proton exchange membrane water electrolysis
    Li, Qing
    He, Yuting
    Zhang, Luteng
    Sun, Wan
    Ma, Zaiyong
    Zhu, Longxiang
    Lian, Qiang
    Tang, Simiao
    Pan, Liang-ming
    JOURNAL OF POWER SOURCES, 2024, 606
  • [25] Porous Transport Layers with Laser Micropatterning for Enhanced Mass Transport in PEM Water Electrolyzers
    Zhu, Kuang
    Zhang, Hao
    Zhu, Liyan
    Tian, Tian
    Tang, Haibo
    Lu, Xingchen
    He, Bei
    Wu, Fanglin
    Tang, Haolin
    NANO LETTERS, 2024, 24 (34) : 10656 - 10663
  • [26] Steady-StateWater Drainage by Oxygen in Anodic Porous Transport Layer of Electrolyzers: A 2D Pore Network Study
    Altaf, Haashir
    Vorhauer, Nicole
    Tsotsas, Evangelos
    Vidakovic-Koch, Tanja
    PROCESSES, 2020, 8 (03)
  • [27] Mathematical modeling of novel porous transport layer architectures for proton exchange membrane electrolysis cells
    Wrubel, Jacob A.
    Kang, Zhenye
    Witteman, Liam
    Zhang, Feng-Yuan
    Ma, Zhiwen
    Bender, Guido
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (50) : 25341 - 25354
  • [28] Application of Nickel Foam As a Porous Transport Layer in a Anion Exchange Membrane Water Electrolyzer
    Pushkareva, I. V.
    Pushkarev, A. S.
    Solovyev, M. A.
    Butrim, S. I.
    Kuleshov, V. N.
    Kurochkin, S. V.
    Kuleshov, N. V.
    Fateev, V. N.
    NANOBIOTECHNOLOGY REPORTS, 2023, 18 (SUPPL 2) : S389 - S397
  • [29] A review of the porous transport layer in polymer electrolyte membrane water electrolysis
    Doan, Tuan Linh
    Lee, Han Eol
    Shah, Syed Shabbar Hassan
    Kim, MinJoong
    Kim, Chang-Hee
    Cho, Hyun-Seok
    Kim, Taekeun
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2021, 45 (10) : 14207 - 14220
  • [30] Structural optimization study on porous transport layers of sintered titanium for polymer electrolyte membrane electrolyzers
    Xu, Chenyang
    Wang, Jian
    Wang, Jianzhong
    Yang, Kun
    Li, Guangzhong
    Gao, Wenbin
    Wang, Hao
    Zhao, Shaoyang
    APPLIED ENERGY, 2024, 357