Journal Article FZJ-2020-02010

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On the Role of Local Heating on Cathode Degradation during the Oxygen Reduction Reaction in Solid Acid Fuel Cells

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2020
Royal Society of Chemistry Cambridge

Sustainable energy & fuels 4(10), 5284-5293 () [10.1039/D0SE00842G]

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Abstract: Reliable, stable, and long-term performance is one of the most important requirements for fuel cells in general. Widespread application of intermediate temperature solid acid fuel cells is still hindered by relatively fast degradation. However, durability studies are both expensive as well as, by their nature, time consuming and therefore rarely performed. In this study, we propose a viable method to investigate degradation pathways on a practical time scale. Five different types of electrodes were fabricated with varying geometrical complexity, but all containing platinum as the electrocatalyst. By utilizing small amounts of well-connected platinum as electrode catalyst, outstanding mass normalized currents were achieved resulting in accelerated cell degradation. Clearly observable effects on the electrodes were characterized ex situ by scanning electron microscopy and the electrochemical activity measured in operando by the decline of the current density at a constant cell voltage. After electrochemical measurement, changes of the electrodes were almost exclusively limited to the cathode side, where the electrolyte CsH2PO4 penetrated the previously distinct platinum layer originating from the current collector fibers. The observed morphological changes decreased the number of electrocatalytically active sites by covering the platinum layer or isolating the current collectors. These effects correlate both with the duration of the measurement and the current density. At different potentials, an asymptotic behavior of the cell performance was observed, identifying current-induced localized heating as the main degradation mechanism. Due to the high overpotential at the cathode, hotspots close to the current collectors could reach sufficient temperatures during cell operation to facilitate a morphological change of the electrolyte. This work gives a detailed analysis of the degradation mechanism in platinum-based solid acid fuel cell electrodes, providing valuable information for designing stable high-performance electrodes.

Classification:

Contributing Institute(s):
  1. Elektrochemische Verfahrenstechnik (IEK-14)
Research Program(s):
  1. 135 - Fuel Cells (POF3-135) (POF3-135)

Appears in the scientific report 2020
Database coverage:
Medline ; Clarivate Analytics Master Journal List ; Current Contents - Engineering, Computing and Technology ; Current Contents - Physical, Chemical and Earth Sciences ; Essential Science Indicators ; IF < 5 ; JCR ; National-Konsortium ; SCOPUS ; Science Citation Index Expanded ; Web of Science Core Collection
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 Record created 2020-05-15, last modified 2024-07-12


Published on 2020-08-21. Available in OpenAccess from 2021-08-21.:
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