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Effective embedded-atom potential for metallic adsorbates on crystalline surfaces

机译:晶体表面上金属吸附物的有效嵌入原子电势

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Based on the embedded-atom method (EAM), an analytical effective potential is developed to model the interaction of a metallic adsorbate on a perfect crystalline substrate, which is also metallic. The many-body character of the originalEAMpotential is preserved in the adsorbate energy and in the alteration of the substrate energy due to the presence of the adsorbate. A mean-field-type version neglecting corrugation of the substrate is first derived based on rigorous integration of individual monolayers, followed by an approximate form for the perturbation of the substrate energy. Lateral corrugation is subsequently included by additional phenomenological terms respecting the symmetry of the substrate, again preserving the many-body nature of the original potential. The effective model contains four parameters to describe uncorrugated substrates and eight extra parameters to describe every order of the Fourier lateral expansion. These parameters were fitted to reproduce the adsorption energy of a sample of random configurations of realistic 2D and 3D clusters deposited on the (1 1 1) fcc surface, for metals for which popular EAM models have been parametrized. As a simple application, the local relaxation of pre-formed icosahedral or truncated octahedral clusters soft-landed and exposing (1 1 1) faces in epitaxy to the substrate has been simulated at 0 and 300 K. The deformation of small clusters to wet the substrate is correctly captured by the effective model. This agreement with the exact potential suggests that the present model should be useful for treating metallic environments in largescale surface studies, notably in structural optimization or as a template for more general models parametrized from ab initio data.
机译:基于嵌入式原子方法(EAM),开发了一种有效分析电位来模拟金属吸附物在同样是金属的完美结晶基质上的相互作用。由于被吸附物的存在,原始EAM电势的多体特征保留在被吸附物能量和底物能量的变化中。首先基于各个单层的严格积分,得出忽略基片波纹的均场型,然后是近似形式的基片能量扰动。随后,横向波纹被包含在有关基底对称性的其他现象学术语中,再次保留了原始势能的多体性质。有效模型包含四个参数,用于描述非波纹状基材,以及八个附加参数,用于描述傅立叶横向膨胀的每个顺序。拟合这些参数可再现沉积在(1 1 1)fcc表面上的真实2D和3D簇的随机配置的样品的吸附能,这些金属已针对流行的EAM模型进行了参数化。作为一个简单的应用,已模拟了软着陆并外延(1 1 1)面在基底上外露的预成型二十面体或截头八面体簇的局部弛豫,其模拟值为0和300K。有效模型可以正确捕获基材。这种具有确切潜力的协议表明,本模型应可用于大规模表面研究中的金属环境处理,特别是在结构优化中或作为从头算数据中参数化的更通用模型的模板。

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