Water gradient manipulation through the polymer electrolyte membrane of an operating microfluidic water electrolyzer

被引:1
|
作者
Krause, Kevin [1 ,2 ]
Crete-Laurence, Adele [1 ,2 ]
Michau, Dominique [3 ]
Clisson, Gerald [4 ]
Battaglia, Jean-Luc [1 ,2 ]
Chevalier, Stephane [1 ,2 ]
机构
[1] Univ Bordeaux, CNRS, UMR 5295, Bordeaux INP,I2M, F-33400 Talence, France
[2] CNRS, UMR 5295, Arts & Metiers Inst Technol, Bordeaux INP,I2M, F-33400 Talence, France
[3] Univ Bordeaux, CNRS, UMR 5026, ICMCB,Bordeaux INP, F-33600 Pessac, France
[4] Univ Bordeaux, CNRS, UMR 5258, Syensqo,LOF, F-33600 Pessac, France
关键词
Microfluidics; Polymer electrolyte membrane; Water electrolysis; Operando imaging; Infrared spectroscopy; Distribution of relaxation times; HYDROGEN-PRODUCTION; NAFION; TRANSPORT; HYDRATION;
D O I
10.1016/j.jpowsour.2024.235297
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
The key component of a polymer electrolyte membrane (PEM) water splitting electrolyzer is its membrane. Despite decades of research, the transport phenomena occurring within the membrane during electrolysis - which are vital to the device's efficiency - have yet to be fully understood. In this work, controlling the anolyte concentration can effectively be used to tune the PEM water gradient, but it comes with a tradeoff in electrochemical performance. Infrared (IR) imaging is coupled with electrochemical impedance spectroscopy and distribution of relaxation times to elucidate the relationship between membrane hydration and ohmic, kinetic, and mass transport losses. Varied H2SO4 anolyte concentrations manifested water diffusion gradients through the PEM of the electrolyzer, where the strongest water diffusion gradients | Delta lambda(fit) | (relative to open circuit voltage) were observed for the most concentrated anolyte. However, tuning the anolyte concentration came with a tradeoff between a lower ohmic resistance (from 4.4 Omega cm(-2) to 4.0 Omega cm(-2) for 0.1 mol L-1 to 1.0 mol L-1 H2SO4 anolyte) and higher kinetic and mass transport losses accompanied by increasingly unstable performance. These findings showcase the potential of IR imaging when coupled with a microfluidic PEM electrolyzer and electrochemical characterization techniques, and the influence of anolyte concentration for manipulating the PEM water gradient.
引用
收藏
页数:12
相关论文
共 50 条
  • [11] Magnetic Resonance Imaging of Water in Operating Polymer Electrolyte Membrane Fuel Cells
    Tsushima, S.
    Hirai, S.
    FUEL CELLS, 2009, 9 (05) : 506 - +
  • [12] Investigation of the effect of charge transfer coefficient (CTC) on the operating voltage of polymer electrolyte membrane (PEM) electrolyzer
    Tijani, Alhassan Salami
    Kamarudin, Nur Afiqah Binti
    Mazlan, Fatin Athirah Binti
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (19) : 9119 - 9132
  • [13] Accelerated stress test of polymer electrolyte membrane water electrolyzer via solar power generation condition
    Choi, Baeck B.
    Jo, Jae Hyeon
    Yoo, Young Sung
    Jeon, Sang-Yun
    Lee, Taehee
    Choi, Yeong-Jun
    Chung, Dong Young
    Lee, Eung-Jun
    Yoo, Sung Jong
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2023, 57
  • [14] Ni Nano-particle Encapsulated in Hollow Carbon Sphere Electrocatalyst in Polymer Electrolyte Membrane Water Electrolyzer
    Chattopadhyay, Jayeeta
    Pathak, Tara Sankar
    Srivastava, R.
    Singh, A. C.
    ELECTROCHIMICA ACTA, 2015, 167 : 429 - 438
  • [15] Evaluation of Two Water Transports through Electrolyte Membrane of Polymer Electrolyte Fuel Cell Based on Water Visualization and Current Measurement
    Nishida, K.
    Hosotani, T.
    Asa, M.
    FUEL CELLS, 2019, 19 (01) : 60 - 70
  • [16] Modelling and Experimental Analysis of a Polymer Electrolyte Membrane Water Electrolysis Cell at Different Operating Temperatures
    Liso, Vincenzo
    Savoia, Giorgio
    Araya, Samuel Simon
    Cinti, Giovanni
    Kaer, Soren Knudsen
    ENERGIES, 2018, 11 (12)
  • [17] An ex-situ investigation of the effect of clamping pressure on the membrane swelling of a polymer electrolyte water electrolyzer using X-Ray tomography
    Hoppe, Eugen
    Holtwerth, Sebastian
    Mueller, Martin
    Lehnert, Werner
    JOURNAL OF POWER SOURCES, 2023, 578
  • [18] THROUGH-PLANE WATER DISTRIBUTION IN A POLYMER ELECTROLYTE FUEL CELL AT VARIOUS OPERATING TEMPERATURES
    Wang, Yun
    Chen, Ken S.
    PROCEEDINGS OF THE ASME INTERNATIONAL HEAT TRANSFER CONFERENCE - 2010, VOL 5: FUEL CELLS, GAS TURBINES, HEAT PIPES, JET IMPINGEMENT, RADIATION, 2010, : 109 - 114
  • [19] Magnetic Resonance Imaging of a Polymer Electrolyte Membrane under Water Permeation
    Tsushima, S.
    Takita, S.
    Hirai, S.
    Kubo, N.
    Aotani, K.
    EXPERIMENTAL HEAT TRANSFER, 2009, 22 (01) : 1 - 11
  • [20] Hydrogen safety aspects related to high-pressure polymer electrolyte membrane water electrolysis
    Grigoriev, S. A.
    Millet, P.
    Korobtsev, S. V.
    Porembskiy, V. I.
    Pepic, M.
    Etievant, C.
    Puyenchet, C.
    Fateev, V. N.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (14) : 5986 - 5991