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October 22, 2004The Journal of Physical Chemistry B13,136 citations

Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode

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JNJens K. NørskovJRJan RossmeislÁLÁ. Logadóttir

Key Points

  • Identify the fundamental atomic-scale origins of the kinetic overpotential limiting the oxygen reduction reaction at fuel-cell cathodes.
  • Applied density functional theory and electronic structure calculations to model intermediate thermodynamic stability as a function of applied electrode bias.
  • Constructed free-energy reaction landscapes for the oxygen reduction reaction over Pt(111) and built an adsorption energy database across multiple transition and noble metals.
  • Demonstrated that excessive thermodynamic stability of adsorbed oxygen and hydroxyl intermediates near equilibrium potential causes the catalytic overpotential on Pt(111).
  • Showed calculated rate constants for proton and electron transfer to adsorbed oxygen species quantitatively reproduce experimentally observed reaction kinetics.
  • Identified that alternative peroxide mechanisms dominate on the most noble metals, accounting for oxygen reduction trends across diverse metal catalysts.

Abstract

We present a method for calculating the stability of reaction intermediates of electrochemical processes on the basis of electronic structure calculations. We used that method in combination with detailed density functional calculations to develop a detailed description of the free-energy landscape of the electrochemical oxygen reduction reaction over Pt(111) as a function of applied bias. This allowed us to identify the origin of the overpotential found for this reaction. Adsorbed oxygen and hydroxyl are found to be very stable intermediates at potentials close to equilibrium, and the calculated rate constant for the activated proton/electron transfer to adsorbed oxygen or hydroxyl can account quantitatively for the observed kinetics. On the basis of a database of calculated oxygen and hydroxyl adsorption energies, the trends in the oxygen reduction rate for a large number of different transition and noble metals can be accounted for. Alternative reaction mechanisms involving proton/electron transfer to adsorbed molecular oxygen were also considered, and this peroxide mechanism was found to dominate for the most noble metals. The model suggests ways to improve the electrocatalytic properties of fuel-cell cathodes.

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Cite This Study

Nørskov et al. (2004) studied this question.

synapsesocial.com/papers/69d6d02b8dca315383ed925fhttps://doi.org/10.1021/jp047349j
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