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FIRST-PRINCIPLES STUDY OF ATOMIC HYDROGEN AND OXYGEN ADSORPTION ON DOPED-IRON NANOCLUSTERS

机译:掺杂铁纳米团簇对氢和氧的吸附的第一性原理研究

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Density functional theory calculations have been used to calculate the ground state structure and oxygen and hydrogen adsorption properties of the pure and doped-iron nanoclusters. Small atomic clusters containing two to six atoms have been considered and a single Fe atom has replaced by a minor element i.e. Zr, Ti, and Sc. Doping of a minor element increases the cluster stability and octahedron Fe_5Zr is the most stable structure within this study. Zr- and Sc-doped clusters have the highest oxygen and hydrogen adsorption energy. The electronic structure shows a strong hybridization between the metal 3d and oxygen 2p orbitals with a small contribution from metal 4s and 3p orbitals. Additionally, H s and metal 4s states form a new peak below the Fermi energy and a small modification is observed for 3d orbitals near the Fermi level. A small amount of Zr- and Sc-doping into the Fe-based alloys might improve the oxide film adherence.
机译:密度泛函理论计算已用于计算纯铁和掺杂铁纳米团簇的基态结构以及氧和氢的吸附特性。已经考虑了包含2至6个原子的小原子团簇,并且单个Fe原子已被微量元素(即Zr,Ti和Sc)取代。微量元素的掺杂提高了团簇的稳定性,八面体Fe_5Zr是该研究中最稳定的结构。掺Zr和Sc的团簇具有最高的氧和氢吸附能。电子结构显示出金属3d和氧2p轨道之间的强杂化,而金属4s和3p轨道的贡献很小。另外,Hs和金属4s态在费米能以下形成一个新峰,并且在费米能级附近的3d轨道上观察到很小的变化。少量掺入铁基合金的Zr和Sc可能会改善氧化膜的附着力。

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