Literature DB >> 34374278

Performance and Durability of Pure-Water-Fed Anion Exchange Membrane Electrolyzers Using Baseline Materials and Operation.

Grace A Lindquist1, Sebastian Z Oener1, Raina Krivina1, Andrew R Motz2, Alex Keane2, Christopher Capuano2, Katherine E Ayers2, Shannon W Boettcher1.   

Abstract

Water electrolysis powered by renewable electricity produces green hydrogen and oxygen gas, which can be used for energy, fertilizer, and industrial applications and thus displace fossil fuels. Pure-water anion-exchange-membrane (AEM) electrolyzers in principle offer the advantages of commercialized proton-exchange-membrane systems (high current density, low cross over, output gas compression, etc.) while enabling the use of less-expensive steel components and nonprecious metal catalysts. AEM electrolyzer research and development, however, has been limited by the lack of broadly accessible materials that provide consistent cell performance, making it difficult to compare results across studies. Further, even when the same materials are used, different pretreatments and electrochemical analysis techniques can produce different results. Here, we report an AEM electrolyzer comprising commercially available catalysts, membrane, ionomer, and gas-diffusion layers operating near 1.9 V at 1 A cm-2 in pure water. After the initial break in, the performance degraded by 0.67 mV h-1 at 0.5 A cm-2 at 55 °C. We detail the key preparation, assembly, and operation techniques employed and show further performance improvements using advanced materials as a proof-of-concept for future AEM-electrolyzer development. The data thus provide an easily reproducible and comparatively high-performance baseline that can be used by other laboratories to calibrate the performance of improved cell components, nonprecious metal oxygen evolution, and hydrogen evolution catalysts and learn how to mitigate degradation pathways.

Entities:  

Keywords:  anion exchange membrane; ionomer stability; membrane conditioning; membrane electrolysis; water electrolysis

Year:  2021        PMID: 34374278     DOI: 10.1021/acsami.1c06053

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  6 in total

1.  Design principles for water dissociation catalysts in high-performance bipolar membranes.

Authors:  Lihaokun Chen; Qiucheng Xu; Sebastian Z Oener; Kevin Fabrizio; Shannon W Boettcher
Journal:  Nat Commun       Date:  2022-07-04       Impact factor: 17.694

Review 2.  Anion-Exchange Membrane Water Electrolyzers.

Authors:  Naiying Du; Claudie Roy; Retha Peach; Matthew Turnbull; Simon Thiele; Christina Bock
Journal:  Chem Rev       Date:  2022-04-20       Impact factor: 72.087

3.  Zero-Gap Bipolar Membrane Electrolyzer for Carbon Dioxide Reduction Using Acid-Tolerant Molecular Electrocatalysts.

Authors:  Bhavin Siritanaratkul; Mark Forster; Francesca Greenwell; Preetam K Sharma; Eileen H Yu; Alexander J Cowan
Journal:  J Am Chem Soc       Date:  2022-04-22       Impact factor: 16.383

Review 4.  What is Next in Anion-Exchange Membrane Water Electrolyzers? Bottlenecks, Benefits, and Future.

Authors:  Carlo Santoro; Alessandro Lavacchi; Piercarlo Mustarelli; Vito Di Noto; Lior Elbaz; Dario R Dekel; Frédéric Jaouen
Journal:  ChemSusChem       Date:  2022-03-24       Impact factor: 9.140

5.  Water management in anion-exchange membrane water electrolyzers under dry cathode operation.

Authors:  Susanne Koch; Joey Disch; Sophia K Kilian; Yiyong Han; Lukas Metzler; Alessandro Tengattini; Lukas Helfen; Michael Schulz; Matthias Breitwieser; Severin Vierrath
Journal:  RSC Adv       Date:  2022-07-20       Impact factor: 4.036

6.  High-resolution neutron imaging of salt precipitation and water transport in zero-gap CO2 electrolysis.

Authors:  Joey Disch; Luca Bohn; Susanne Koch; Michael Schulz; Yiyong Han; Alessandro Tengattini; Lukas Helfen; Matthias Breitwieser; Severin Vierrath
Journal:  Nat Commun       Date:  2022-10-15       Impact factor: 17.694

  6 in total

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