Journal Article FZJ-2018-02978

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The stability challenge on the pathway to high-current-density polymer electrolyte membrane water electrolyzers

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2018
Elsevier New York, NY [u.a.]

Electrochimica acta 278, 324 - 331 () [10.1016/j.electacta.2018.04.154]

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Abstract: The investment costs for polymer electrolyte membrane (PEM) water electrolysis can be reduced if systems are operated at elevated current densities. However, it remains unknown how this affects long-term stability. In this study, we elucidate the durability and degradation phenomena that occur in our test cells at high (2 A cm−2) and elevated (up to 3 A cm−2) current densities during constant and intermittent operation. Up to 2 A cm−2, stable cell performance was achieved under both regime. At elevated current densities, two primary factors caused performance degradation, namely the increase in ohmic cell resistance and the appearance of mass-transport resistance, both of which contribute to the voltage increase in equal measures. By varying the way in which the cell is assembled, it was found that both effects relate to the anti-corrosion coating of the titanium porous transport layer (PTL), which was stable at 2 A cm−2 but detached at certain points and adhered to the anodic side of the catalyst-coated membrane (CCM) under operation at elevated current densities. The results of this study indicate that PEM water electrolyzers can be coupled to intermittent power profiles from renewable energy sources without substantially affecting long-term stability.

Classification:

Contributing Institute(s):
  1. Elektrochemische Verfahrenstechnik (IEK-3)
Research Program(s):
  1. 134 - Electrolysis and Hydrogen (POF3-134) (POF3-134)

Appears in the scientific report 2018
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Medline ; Current Contents - Physical, Chemical and Earth Sciences ; Ebsco Academic Search ; IF < 5 ; JCR ; NCBI Molecular Biology Database ; NationallizenzNationallizenz ; SCOPUS ; Science Citation Index ; Science Citation Index Expanded ; Thomson Reuters Master Journal List ; Web of Science Core Collection
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 Record created 2018-05-15, last modified 2024-07-11


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