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November 9, 2021Journal of the American Chemical Society60 citationsOpen Access

Modeling Potential-Dependent Electrochemical Activation Barriers: Revisiting the Alkaline Hydrogen Evolution Reaction

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JLJiang LiJSJoakim Halldin StenlidTLThomas Ludwig

Key Points

  • The aim is to accurately model potential-dependent electrochemical activation barriers to enhance our understanding of electrocatalysis.
  • Developed an analytical approach using charge conservation and decoupled potential energy surfaces.
  • Simulated charge transfer barriers at different potentials and included thermal fluctuations of the solvent.
  • Modeled the microkinetics of the alkaline hydrogen evolution reaction at the electrode–solvent interface.
  • Significant increase in HER current observed due to statistical fluctuations in water–metal distances.
  • The model successfully simulated various reaction mechanisms and showed good qualitative agreement with experimental I–V curves.
  • The method demonstrates several orders of magnitude improvement in current compared to static solvent conditions.

Abstract

Accurate theoretical simulation of electrochemical activation barriers is key to understanding electrocatalysis and guides the design of more efficient catalysts. Providing a detailed picture of proton transfer processes encounters several challenges: the constant potential requirement during charge transfer, the different time scales involved in the processes, and the thermal fluctuation of the solvent. Hence, it is prohibitively expensive computationally to apply density functional theory (DFT) calculations in modeling the potential-dependent activation barrier at the electrode–solvent interface, and the results are dubious. To address these challenges, we have developed an analytical approach based on charge conservation and decoupled potential energy surfaces to compute charge transfer barriers. The method makes it possible to simulate an electrochemical process at different potentials and explicitly include thermal fluctuations of the solvent at the electrode–solvent interface. We use the Pt-catalyzed alkaline hydrogen evolution reaction (HER) as our benchmark reaction, and we model the microkinetics of HER with consideration of the spatial fluctuations between the metal surface and the first solvent layer at room temperature. The distribution of water–metal distances has a large effect on the barriers of the charge transfer processes, and an accurate account of the statistical fluctuation in the reaction network leads to a several orders of magnitude increase in HER current as compared to transfer from a static solvent. The trends of the different reaction mechanisms in HER were successfully simulated with our model, and the theoretical I–V curves obtained are in good qualitative agreement with experimental results.

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Cite This Study

Li et al. (2021) studied this question.

synapsesocial.com/papers/6a09f3010e219f8cdd345e4bhttps://doi.org/10.1021/jacs.1c07276
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1The Hydrogen Evolution Reaction in Alkaline Solution: From Theory, Single Crystal Models, to Practical Electrocatalysts2017 · 1,476 citations
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  3. 3Hydrogen Evolution Reaction: Mechanistic Insights and Emerging Design Strategies for Efficient Catalysis2025 · 27 citations
  4. 4Advancing the Electrochemistry of the Hydrogen‐Evolution Reaction through Combining Experiment and Theory2014 · 2,036 citations
  5. 5On the Origins of Intrinsic Limitations of Electrocatalytic Hydrogen Evolution in Alkaline Media2024 · 3 citations