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Scaling relationships and theory for vibrational frequencies of adsorbates on transition metal surfaces

机译:过渡金属表面上吸附物振动频率的比例关系和理论

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摘要

Adsorbate vibrational excitations are an important fingerprint of molecule/surface interactions, affecting temperature contributions to the free energy and impacting reaction rate and equilibrium constants. Furthermore, vibrational spectra aid in identifying species and adsorption sites present in experimental studies. Despite their importance, knowledge of how adsorbate frequencies scale across materials is lacking. Here, by combining previously reported experimental data and our own density-functional theory calculations, we reveal linear correlations between vibrational frequencies of adsorbates on transition metal surfaces. Through effective-medium theory, linear muffin-tin orbital theory, and the d-band model, we rationalize the squares of the frequencies to be fundamentally linear in their scaling across transition metal surfaces. We identify the adsorbate-binding energy as a descriptor for certain molecular vibrations and rigorously relate errors in frequencies to errors in adsorption energies. We also discuss the impact of scaling on surface thermochemistry and adsorbate coverage.
机译:吸附物的振动激发是分子/表面相互作用的重要标志,影响温度对自由能的贡献并影响反应速率和平衡常数。此外,振动光谱有助于确定实验研究中存在的物质和吸附位点。尽管它们很重要,但是缺乏关于吸附物频率如何在各种材料上缩放的知识。在这里,通过结合先前报道的实验数据和我们自己的密度泛函理论计算,我们揭示了过渡金属表面上吸附物的振动频率之间的线性关系。通过有效介质理论,线性松饼-锡轨道理论和d波段模型,我们将频率的平方合理化,使其在过渡金属表面上的缩放比例从根本上讲是线性的。我们将吸附物结合能确定为某些分子振动的描述子,并将频率误差与吸收能误差严格相关。我们还将讨论结垢对表面热化学和吸附物覆盖率的影响。

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