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Discovering surface reaction pathways using accelerated molecular dynamics and network analysis tools.

Hirotoshi Hirai1, Ryosuke Jinnouchi1

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This study introduces an automated method to map surface reaction pathways using ab initio molecular dynamics simulations. The approach efficiently identifies new reaction routes and reproduces experimental observations without needing prior experimental data.

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Area of Science:

  • Computational Chemistry
  • Surface Science
  • Catalysis

Background:

  • Mapping surface reaction pathways is crucial for understanding catalysis.
  • Traditional methods often require extensive experimental data and human intervention.
  • Accurate prediction of reaction mechanisms at the atomic level is challenging.

Purpose of the Study:

  • To develop an automated computational method for mapping surface reaction pathways.
  • To enable pathway discovery with minimal experimental data and human input.
  • To apply the method to industrially relevant catalytic reactions.

Main Methods:

  • Utilized bias potentials to enhance sampling of surface reactions within ab initio molecular dynamics (MD) simulations.
  • Developed an automated procedure to extract elementary reactions from MD trajectories.
  • Employed network analysis tools to map extracted reaction data onto pathways.

Main Results:

  • Successfully mapped surface reaction pathways for methane steam reforming on Rh(111) and propane reforming on Pt(111) and Pt3Sn(111).
  • Discovered novel, energetically favorable reaction pathways for both investigated reactions.
  • Reproduced experimentally observed trends in surface reaction activity and selectivity, including material dependence.

Conclusions:

  • The automated method provides an efficient and data-minimal approach for elucidating surface reaction mechanisms.
  • The findings offer new insights into catalytic processes and can guide catalyst design.
  • This computational strategy significantly advances the study of heterogeneous catalysis.