Unraveling the impact of reverse currents on electrode stability in anion exchange membrane water electrolysis

被引:3
作者
Guruprasad, Naveen [1 ,2 ]
van der Schaaf, John [1 ,2 ]
de Groot, Matheus T. [1 ,2 ]
机构
[1] Eindhoven Univ Technol, Dept Chem Engn & Chem, Sustainable Proc Engn Grp, POB 513, NL-5600 MB Eindhoven, Netherlands
[2] Eindhoven Univ Technol, Eindhoven Inst Renewable Energy Syst, POB 513, NL-5600 MB Eindhoven, Netherlands
基金
荷兰研究理事会;
关键词
Anion exchange membrane electrolysis; Reverse currents; Electrode stability; Intermittent operation; Reference electrodes; OXYGEN EVOLUTION; SHUNT CURRENTS; NOBLE-METALS; HYDROGEN; DISSOLUTION; CORROSION; NANOPARTICLES; PERFORMANCE; PLACEMENT; RUTHENIUM;
D O I
10.1016/j.jpowsour.2024.234877
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Anion Exchange Membrane Water Electrolysis (AEMWE) stands out as one of the promising ways of producing green hydrogen. However, significant strides in performance and durability are necessary for commercial competitiveness. Shunt currents and reverse currents are common problems associated with electrolyzers using conductive liquid electrolytes during start/stop conditions and can enhance electrode degradation. This study incorporates a dual Pt -wire reference electrode within the flow cell consisting of a NiFe-layered double hydroxide anode and different cathode materials to decouple individual electrode kinetics under steady state and intermittent operating conditions. The performance of bimetallic cathode catalysts like PtRu/C and NiMo/C was assessed in comparison with traditional Pt/C catalysts in the context of the hydrogen evolution reaction. The initial observed catalyst activity displayed an evident trend in the order of PtRu/C > Pt/C > NiMo/C. When subjected to reverse currents, all three systems showed degradation in performance. The use of reference electrodes illustrated that all cathode coatings degraded as a result of the reverse currents while the anode remained relatively stable. The degradation followed the trend of NiMo/C > PtRu/C > Pt/C. This work thus shows that reverse currents are a real issue for AEMWE and demonstrates the importance of investigating electrodes under intermittent conditions.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Anion exchange membrane water electrolysis over superparamagnetic ferrites
    Fernandes, Tiago
    Mohan, Ramsundar Rani
    Donk, Laura
    Chen, Wei
    Biz, Chiara
    Fianchini, Mauro
    Kamali, Saeed
    Alizadeh, Siavash Mohammad
    Kitayev, Anna
    Ashdot, Aviv
    Page, Miles
    Salonen, Laura M.
    Kopp, Sebastian
    Gutelmacher, Ervin Tal
    Gracia, Jose
    Figueiredo, Marta Costa
    Kolen'ko, Yury V.
    ENERGY ADVANCES, 2024, 3 (10): : 2575 - 2586
  • [22] Innovative Membrane Electrode Assembly (MEA) Fabrication for Proton Exchange Membrane Water Electrolysis
    Jung, Guo-Bin
    Chan, Shih-Hung
    Lai, Chun-Ju
    Yeh, Chia-Chen
    Yu, Jyun-Wei
    ENERGIES, 2019, 12 (21)
  • [23] Ternary NiCoFe nanosheets for oxygen evolution in anion exchange membrane water electrolysis
    Faid, Alaa Y.
    Barnett, Alejandro Oyarce
    Seland, Frode
    Sunde, Svein
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (56) : 23483 - 23497
  • [24] Alkaline anion exchange membrane water electrolysis: Effects of electrolyte feed method and electrode binder content
    Cho, Min Kyung
    Park, Hee-Young
    Lee, Hye Jin
    Kim, Hyoung-Juhn
    Lim, Ahyoun
    Henkensmeier, Dirk
    Yoo, Sung Jong
    Kim, Jin Young
    Lee, So Young
    Park, Hyun S.
    Jang, Jong Hyun
    JOURNAL OF POWER SOURCES, 2018, 382 : 22 - 29
  • [25] Effect of Copper Cobalt Oxide Composition on Oxygen Evolution Electrocatalysts for Anion Exchange Membrane Water Electrolysis
    Kwon, Chae-Yeon
    Jeong, Jae-Yeop
    Yang, Juchan
    Park, Yoo Sei
    Jeong, Jaehoon
    Park, Honghyun
    Kim, Yangdo
    Moon, Kyoung-Seok
    Choi, Sung Mook
    FRONTIERS IN CHEMISTRY, 2020, 8
  • [26] Water Electrolysis Facing the Gigawatt Challenge-Comprehensive De-Risking of Proton Exchange Membrane and Anion Exchange Membrane Electrolyser Technology
    Karl, Andre
    Jodat, Eva
    Kungl, Hans
    Dobrenizki, Ladislaus
    Schmid, Gunter
    Geskes, Peter
    Eichel, Rudiger-A.
    ELECTROCHEMICAL SCIENCE ADVANCES, 2025,
  • [27] Systematic degradation analysis in renewable energy-powered proton exchange membrane water electrolysis
    Voronova, Anastasiia
    Kim, Sol
    Kim, Dongwon
    Park, Hee-Young
    Jang, Jong Hyun
    Seo, Bora
    ENERGY & ENVIRONMENTAL SCIENCE, 2023, 16 (11) : 5170 - 5184
  • [28] Anion exchange membrane: A valuable perspective in emerging technologies of low temperature water electrolysis
    Palmas, Simonetta
    Rodriguez, Jesus
    Mais, Laura
    Mascia, Michele
    Herrando, Mireia Cifre
    Vacca, Annalisa
    CURRENT OPINION IN ELECTROCHEMISTRY, 2023, 37
  • [29] Development of advanced anion exchange membrane from the view of the performance of water electrolysis cell
    Liu, Chao
    Geng, Zhen
    Wang, Xukang
    Liu, Wendong
    Wang, Yuwei
    Xia, Qihan
    Li, Wenbo
    Jin, Liming
    Zhang, Cunman
    JOURNAL OF ENERGY CHEMISTRY, 2024, 90 : 348 - 369
  • [30] Advanced CFD simulation of two-phase anion exchange membrane water electrolysis
    Lee, Donggyun
    Kim, Minsu
    Kim, Jeongdong
    Moon, Il
    Kim, Junghwan
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 88 : 322 - 332