Theoretical Studies of Potential-Dependent and Competing Mechanisms of the Electrocatalytic Oxygen Reduction Reaction on Pt(111)
Theoretical Studies of Potential-Dependent and Competing Mechanisms of the Electrocatalytic Oxygen Reduction Reaction on Pt(111)
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DOI:
10.1002/anie.201004794
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发表时间:
2010-01-01
影响因子:
16.6
通讯作者:
Jacob, Timo
中科院分区:
文献类型:
--
作者:
Keith, John A.;Jacob, Timo
The oxygen reduction reaction (ORR) is a key process in combustion, corrosion, cellular respiration, and energy technology. Under electrochemical conditions with a supply of hydrogen, the electrocatalytic ORR [1] is also the reaction that allows polymer-electrolyte (or proton-exchange) membrane fuel cells (PEMFCs) to operate. Economic and environmental factors are driving research to develop practical and environmentally sustainable energy sources as well as long-living heterogeneous catalysts. The ORR is expected to play a central role in these technologies, but a more fundamental understanding of the ORR is needed. An atomic-level understanding of the ORR mechanism is still in its early stages because of the high complexity of ORR kinetics. What is known, however, is that the complete electrochemical ORR involves four net coupled proton and electron transfers (CPETs) to molecular oxygen at the cathode. Although the idealized electrochemical reaction generates 1.23 V per electron (Scheme1), the standard operating potential for the electrocatalytic ORR on Pt (111) is below 0.9 V. Determining the cause of this overpotential of about 0.3 V and improving the overall activity (increasing the current density) are the keys to improving ORR catalyst design and to better harness the ORR as a practical means for energy conversion. Some ORR processes are believed to lead to surface oxides and/or strongly binding intermediates, which in turn are expected as hindrances of the ORR.[1] Thus, designing new heterogeneous catalysts that destabilize these intermediates without changing the overall mechanism is desired.Whilst possible ORR intermediates only consist of H and O atoms, the ORR mechanism is elusive, even on the highly studied Pt (111) electrodes. There have been substantial efforts over the past decade to use first-principles quantum mechanics (QM) calculations to determine binding energies (BEs) of oxygen on platinum and other transition metal surfaces and to extend those data to investigate aspects of the ORR mechanism,[2] and even investigate the role of an applied electrode potential on a reaction mechanism.[3] Most relevantly, QM calculations can provide accurate descriptions of chemical bonding energies, which can be used to predict ORR rate constants. Calculating these values is a first step towards understanding the complete electrocatalytic ORR from first principles, something that will likely require a multiscale analysis explicitly addressing the electrochemical double layer, electron dynamics, surface-coverage effects, and transport issues. Although such a complete simulation is not yet feasible, energies and barriers based on QM calculations can be used in a kinetic model and then compared to experimental observables. If the rate constants obtained from firstprinciples calculations rationalized features of the ORR, this would be a large step towards fundamentally understanding this and other highly complex reactions. Constructing a physically reasonable heterogeneous ORR mechanism requires explicitly determining the BEs of a list of possible intermediates: O*, H*, O2*, OH*, OOH*, H2O2*, and H2O* as well as the transition states that link the intermediates to one another. For generality, we consider that electrochemical reactions may operate by Langmuir–Hinshelwood (LH) or Eley–Rideal (ER) mechanisms. LH mechanisms involve all the reacting intermediates on the surface, whereas ER mechanisms involve species from the electrolyte reacting with a surface intermediate (for example H3O+). Characterization of key steps on the idealized Pt (111) surface allows analogous steps on imperfect or modified …