Pressure and bias dependence of the rate-limiting steps of the oxygen reduction reaction
Abstract
Abstract The oxygen reduction reaction limits the energy efficiency of H 2 fuel cells and Li-air batteries, yet, it remains poorly understood within popular kinetic frameworks. Here, we study the oxygen reduction reaction on Pt/C, Ir/C, Ru/C and Rh/C nanoparticles as a function of electrochemical bias, temperature and O 2 pressure at industrially-relevant conditions in membrane electrode assemblies. Bias-, and pressure-dependent Arrhenius analysis reveals distinct changes in the (apparent) activation energy and pre-exponential factor that we relate to kinetics that cascade through a series of rate-limiting steps and transition states. Further, while the kinetics are accelerated by the pressure and bias, they remain pinned to pseudo-capacitive reduction processes and structural changes at the water-solid interface. Collectively, our study informs on how the free energy driving force and pressure tune the degree of rate control of rate-limiting steps and transition states of (electro)catalytic multi-step reactions and how this is related to structural and chemical changes at the interface. This is at the very heart of catalysis.
Article Details
Authors (6)
Alex Ricardo Silva Olaya
Jody Druce
Department of Interface Science
José M. Gisbert-González
Department of Interface Science
Eduardo Ortega
Department of Interface Science, Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, Berlin 14195, Germany
Beatriz Roldan Cuenya
Department of Interface Science
Sebastian Z. Oener
Department of Interface Science