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首页> 外文期刊>Applied Surface Science >Hydrazine adsorption on perfect and defective fcc nickel (100), (110) and (111) surfaces: A dispersion corrected DFT-D2 study
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Hydrazine adsorption on perfect and defective fcc nickel (100), (110) and (111) surfaces: A dispersion corrected DFT-D2 study

机译:肼在完美和有缺陷的fcc镍(100),(110)和(111)表面上的吸附:色散校正DFT-D2研究

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摘要

We present density functional theory calculations, with a correction for the long-range interactions, of the adsorption of hydrazine (N2H4) on the Ni (110), (100), and (111) surfaces, both defect-free planes and surfaces containing point defects in the form of adatoms and vacancies. Several low-energy adsorption structures for hydrazine on the perfect and defective surfaces have been identified and compared. The hydrazine molecule is shown to interact with the Ni surfaces mainly through the lone-pair of electrons located on the N atoms, forming either monodentate or bidentate bonds with the surface. The strength of N2H4 adsorption on the perfect surfaces is found to be directly related to their stability, i.e. it adsorbs most strongly onto the least stable (110) surface via both N atoms in a gauche-bridge configuration (E-ads = -1.43 eV), followed by adsorption on the (100) where it also binds in gauche-bridge configurations (E-ads = -1.27 eV), and most weakly onto the most stable (111) surface via one N-Ni bond in a trans-atop configuration (E-ads = -1.18 eV). The creation of defects in the form of Ni adatoms and vacancies provides lower-coordinated Ni sites, allowing stronger hydrazine adsorption. Analysis into the bonding nature of N2H4 onto the Ni surfaces reveals that the adsorption is characterized by strong hybridization between the surface Ni d-states and the N p-orbitals, which is corroborated by electron density accumulation within the newly formed N-Ni bonding regions.
机译:我们提出密度泛函理论计算,并校正了镍(110),(100)和(111)表面,无缺陷平面和含氮表面上肼(N2H4)的长距离相互作用。以原子和空位的形式指出缺陷。已经确定并比较了几种在理想表面和有缺陷表面上肼的低能吸附结构。肼分子主要通过位于N原子上的电子的孤对与Ni表面相互作用,与该表面形成单齿或双齿键。发现完美表面上的N2H4吸附强度与其稳定性直接相关,即,它通过两个N原子以网状桥构型最强地吸附到最不稳定(110)的表面上(E-ads = -1.43 eV ),然后在(100)上吸附,它也以网状桥构型(E-ads = -1.27 eV)结合,并通过反式-结构中的一个N-Ni键最弱地吸附在最稳定的(111)表面上。最高配置(E-ads = -1.18 eV)。以Ni原子和空位的形式产生的缺陷提供了较低配位的Ni位,从而使肼吸附更强。对N2H4在Ni表面的键合性质的分析表明,吸附的特征在于表面Ni d-态与N p轨道之间的强杂化,这被新形成的N-Ni键合区域内的电子密度积累所证实。 。

著录项

  • 来源
    《Applied Surface Science》 |2019年第30期|1014-1024|共11页
  • 作者单位

    Kwame Nkrumah Univ Sci & Technol, Dept Chem, Theoret & Computat Chem Lab, Kumasi, Pmb, Ghana;

    Cardiff Univ, Sch Chem, Main Bldg,Pk PI, Cardiff CF10 3AT, S Glam, Wales|Univ Utrecht, Dept Earth Sci, Princetonpl 8a, NL-3584 CD Utrecht, Netherlands;

    Kwame Nkrumah Univ Sci & Technol, Dept Chem, Theoret & Computat Chem Lab, Kumasi, Pmb, Ghana;

    Kwame Nkrumah Univ Sci & Technol, Dept Chem, Theoret & Computat Chem Lab, Kumasi, Pmb, Ghana;

    Cardiff Univ, Sch Chem, Main Bldg,Pk PI, Cardiff CF10 3AT, S Glam, Wales|Univ Utrecht, Dept Earth Sci, Princetonpl 8a, NL-3584 CD Utrecht, Netherlands;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Density functional theory (DFT); Hydrazine adsorption; Fuel cells; Nickel surfaces;

    机译:密度泛函理论(DFT);肼吸附;燃料电池;镍表面;

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