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March 27, 2012ACS Catalysis585 citations

Degradation Mechanisms of Pt/C Fuel Cell Catalysts under Simulated Start–Stop Conditions

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JMJosef C. MeierCGCarolina GaleanoIKIoannis Katsounaros

Key Points

  • Investigate the nanoscale degradation mechanisms and structural changes of Pt/Vulcan fuel cell catalysts subjected to simulated start–stop potential cycling.
  • Simulated fuel cell start–stop degradation using potential cycling in an electrochemical half-cell setup.
  • Tracked nanoscale structural alterations on the same catalyst locations using identical location transmission electron microscopy (IL-TEM) and 3D identical location tomography (IL-tomography).
  • Observed four distinct degradation pathways occurring simultaneously on a single Pt/Vulcan aggregate, driving macroscopic active surface area loss.
  • Demonstrated spatially inhomogeneous degradation behavior across the catalyst, showing distinct degradation trends linked to platinum particle size.

Abstract

This manuscript investigates the degradation of a Pt/Vulcan fuel cell catalyst under simulated start–stop conditions in an electrochemical half-cell. Identical location transmission electron microscopy (IL-TEM) is used to visualize the several different degradation pathways occurring on the same catalyst material under potential cycling conditions. The complexity of degradation on the nanoscale leading to macroscopic active surface area lossis demonstrated and discussed. Namely, four different degradation pathways at one single Pt/Vulcan aggregate are clearly observed. Furthermore, inhomogeneous degradation behavior for different catalyst locations is shown, and trends in degradation mechanisms related to the platinum particle size are discussed in brief. Attention is drawn to the vast field of parameters influencing catalyst stability. We also present the development of a new technique to study changes of the catalyst not only with 2D projections of standard TEM images but also in 3D. For this purpose, identical location tomography (IL-tomography) is introduced, which visualizes the 3D structure of an identical catalyst location before and after degradation.

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Cite This Study

Meier et al. (2012) studied this question.

synapsesocial.com/papers/69de94436bae133e7de93fbahttps://doi.org/10.1021/cs300024h
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