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Mechanical work makes important contributions to surface chemistry at steps.

M F Francis1, W A Curtin2

  • 11] École Polytechnique Fédérale de Lausanne, EPFL STI IGM LAMMM, ME C1 399 (Bâtiment ME), Station 9, Lausanne CH-1015, Switzerland [2] Brown School of Engineering, 182 Hope Street, Providence, Rhode Island 02912, USA.

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Mechanical strain on transition metals can alter adsorbate binding energies unexpectedly. This study reveals a mechanical energy relaxation mechanism that overrides electronic effects, impacting catalytic activity.

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Area of Science:

  • Surface Science
  • Materials Science
  • Computational Chemistry

Background:

  • The binding energy of adsorbates on late transition metals is traditionally explained by electronic factors, with tensile strain enhancing binding.
  • The widely accepted electronic 'd-band' model predicts consistent trends for strain effects on flat surfaces.

Purpose of the Study:

  • To investigate the influence of mechanical strain on adsorbate binding energies at stepped surfaces of late transition metals.
  • To elucidate the underlying mechanisms responsible for strain-induced changes in binding energy, particularly at non-ideal surface sites.

Main Methods:

  • Utilizing computational methods to model the interaction of adsorbates with strained late transition metal surfaces.
  • Analyzing the contributions of both electronic and mechanical energy changes to the overall binding energy.

Main Results:

  • Mechanical strain at stepped surfaces can lead to binding trends opposite to those observed on flat surfaces.
  • A novel mechanical energy relaxation mechanism was identified, which can dominate over electronic effects.
  • This mechanical effect challenges the predictions of the established 'd-band' model.

Conclusions:

  • The findings highlight the critical role of mechanical energy relaxation in modifying adsorbate binding at stepped surfaces.
  • The study demonstrates that strain effects on catalytic activity, exemplified by nickel methanation, can be significantly altered by these mechanical factors.
  • This work necessitates a revised understanding of strain effects in heterogeneous catalysis, particularly for stepped surfaces.