Quantitative investigation of internal polarization in a proton exchange membrane water electrolyzer stack using distribution of relaxation times

被引:0
|
作者
Zuo, Jian [1 ]
Steiner, Nadia Yousfi [1 ]
Li, Zhongliang [1 ]
Hissel, Daniel [1 ,2 ]
机构
[1] Univ Marie & Louis Pasteur, UTBM, CNRS, FEMTO ST, F-90000 Belfort, France
[2] Inst Univ France IUF, Paris, France
关键词
Proton exchange membrane water electrolyzer; Electrochemical impedance spectroscopy; Distribution of relaxation times; Polarization process; Oxygen evolution reaction; PERFORMANCE; PARAMETERS;
D O I
10.1016/j.apenergy.2025.125543
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Proton exchange membrane water electrolyzer (PEMWE) is a promising technology for hydrogen production due to its ability to operate at high currents, compact design, and high produced hydrogen purity. However, the high cost and limited durability challenges must be addressed to advance the commercialization of PEMWEs. Accessing the internal polarization processes is crucial to understanding the performance of PEMWEs and guiding their design and operation. In practice, the output voltage amplitude on a specific current value is often considered a performance indicator. However, PEMWEs are complex systems with multiple polarization processes that are inaccessible using global indicators such as voltage. We propose a distribution of relaxation times (DRT) based approach to overcome this challenge. DRT is a model-free method that deconvolutes the electrochemical impedance spectroscopy data into a series of relaxation times, corresponding to different internal polarization processes. The results show that the internal polarization processes of the PEMWE can be decomposed into four peaks, corresponding to proton transport in the ionomer of catalyst layer, charge transfer during oxygen evolution reaction and hydrogen evolution reaction, and mass transport. The contribution of these processes and high-frequency resistance (HFR) to the overall overpotential losses are further quantified, which indicates that HFR (79.4%) and charge transfer (16.4%) are the two dominant factors. Finally, the influence of operating temperature and cathode pressure on the performance of the PEMWE is quantified using the proposed approach. This approach can be generalized to identify the degradation root cause of PEMWEs which can guide material enhancement and operation optimization to improve the efficiency and durability of PEMWEs.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Fabrication of catalyst layer for proton exchange membrane water electrolyzer: I. Effects of dispersion on particle size distribution and rheological behavior
    Liu, Cheng
    Luo, Maji
    Zeis, Roswitha
    Chuang, Pa-Ya Abel
    Zhang, Ruiming
    Du, Shaojie
    Sui, Pang-Chieh
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 52 : 1143 - 1154
  • [42] Performance modeling and mechanism study of proton exchange membrane water electrolyzer coupled with water electroosmosis
    Chen, Jingxian
    Sun, Yongwen
    Hu, Ding
    Yao, Han
    Shen, Xiaojun
    Zhang, Cunman
    Lv, Hong
    ENERGY CONVERSION AND MANAGEMENT, 2024, 315
  • [43] Distribution of relaxation times as an accessible method to optimize the electrode structure of anion exchange membrane fuel cells
    Sediva, Eva
    Bonizzoni, Simone
    Caielli, Tommaso
    Mustarelli, Piercarlo
    JOURNAL OF POWER SOURCES, 2023, 558
  • [44] Structure engineering defective and mass transfer-enhanced RuO2 nanosheets for proton exchange membrane water electrolyzer
    Huang, Huawei
    Kim, Hoyoung
    Lee, Ahryeon
    Kim, Seongbeen
    Lim, Won-Gwang
    Park, Cheol-Young
    Kim, Seoa
    Kim, Soo-Kil
    Lee, Jinwoo
    NANO ENERGY, 2021, 88
  • [45] Optimization of Proton Exchange Membrane Electrolyzer Cell Design Using Machine Learning
    Mohamed, Amira
    Ibrahem, Hatem
    Yang, Rui
    Kim, Kibum
    ENERGIES, 2022, 15 (18)
  • [46] Design and characterization of compact proton exchange membrane water electrolyzer for component evaluation test
    Nagasawa, Kensaku
    Ishida, Taiki
    Kashiwagi, Hayato
    Sano, Yosuke
    Mitsushima, Shigenori
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (74) : 36619 - 36628
  • [47] Comprehensive study and optimization of membrane electrode assembly structural composition in proton exchange membrane water electrolyzer
    Zhang, Shuhan
    Wang, Zhihua
    Zhang, Ruilin
    He, Yong
    Cen, Kefa
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (91) : 35463 - 35476
  • [48] Discovery of bubble accumulation behavior in catalyst layer of proton exchange membrane water electrolyzer
    Yuan, Shu
    Zhao, Congfan
    Fu, Cehuang
    Li, Jiazhen
    Su, Yongjian
    Xue, Rui
    Shen, Shuiyun
    Yin, Jiewei
    Yan, Xiaohui
    Zhang, Junliang
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2024, 227
  • [49] Experimental Investigation of a Novel Design of Proton Exchange Membrane Fuel Cell Stack
    Scott, Paul E.
    Calay, Rajnish K.
    HEAT TRANSFER ENGINEERING, 2013, 34 (11-12) : 925 - 937
  • [50] Kinetic Insights of Proton Exchange Membrane Water Electrolyzer Obtained by Operando Characterization Methods
    Liu, Han
    Tao, Hua Bing
    Liu, Bin
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2022, 13 (28) : 6520 - 6531