Diyu Zhang, Vladyslav Virchenko, Charlotte Jansen, Irene M. N. Groot and Ludo B. F. Juurlink*,
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引用次数: 0
摘要
要发展描述气体-表面相互作用的综合理论,就必须有精确的实验数据作为基准。一氧化碳对 Cu(111) 的吸附就是这样一个基准系统。虽然最先进的计算仍然错误地预测低覆盖率时最有利的吸附位点是 3 倍空心位点,但实验研究尚未明确确定所有覆盖层结构的吸附位点。我们利用成熟技术的新组合,重新研究了 CO 在 Cu(111) 上的吸附、排序和解吸。我们的研究结果支持了之前提出的针对不同覆盖率的各种覆盖层结构的建议。对于中等覆盖率的 1.5×1.5 结构,我们发现只有顶部位点被占据。在 1.4×1.4 结构中,桥位吸附只发生在 0.42 单层(ML)覆盖率之后。该位点的占据与顶端 CO 分子向偏心顶端移动有关,并具有特征的红外吸收频率。这些发现表明,依赖于覆盖率的吸附剂相互作用和结合能之间存在着复杂的平衡,导致了非直观的排序,需要改进理论才能理解。
Adsorption Sites in the High-Coverage Limit of CO on Cu(111)
The development of a comprehensive theory describing gas-surface interactions requires accurate experimental data for benchmarking. The adsorption of CO to Cu(111) is such a benchmark system. While state-of-the-art calculations still erroneously predict the favored adsorption site at low coverage to be the 3-fold hollow site, experimental studies have not yet definitively identified adsorption sites for all overlayer structures. Using a new combination of well-established techniques, we have reinvestigated CO adsorption, its ordering, and desorption on Cu(111). Our results support earlier suggestions for various overlayer structures for different coverages. For the intermediate-coverage 1.5×1.5 structure, we show that only on-top sites are occupied. Bridge site adsorption occurs only beyond a coverage of 0.42 monolayer (ML) in the 1.4×1.4 structure. Occupancy of this site is associated with a shift of atop CO molecules to off-centered atop with a characteristic IR absorbance frequency. These findings indicate a complex balance of coverage-dependent adsorbate interactions and binding energies that results in nonintuitive ordering and requires improvements in theory to understand.
期刊介绍:
The Journal of Physical Chemistry A/B/C is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.