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A Density Functional Theory Study of the Geometric and Electronic Structure of MgF_2 (110) Surface

A Density Functional Theory Study of the Geometric and Electronic Structure of MgF_2 (110) Surface
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摘要 Abstract" Ab initio density functional theory (DFT) was employed to study geometric and electronic structure of MgF2 (110) surface. Three different clean surface models have been considered. The results show that the surface terminated with one-layer F has the smallest relaxation and the lowest surface energy, which indicates this model is the most energetically favorable structure of MgF2(110) surface. Furthermore, the electronic properties are also discussed from the point of density of states and charge density. Analysis of electronic structure shows that the band gap of the surface is significantly narrowed with respect to the bulk. The electrons of the surface exhibit strong locality and larger effective mass. Abstract" Ab initio density functional theory (DFT) was employed to study geometric and electronic structure of MgF2 (110) surface. Three different clean surface models have been considered. The results show that the surface terminated with one-layer F has the smallest relaxation and the lowest surface energy, which indicates this model is the most energetically favorable structure of MgF2(110) surface. Furthermore, the electronic properties are also discussed from the point of density of states and charge density. Analysis of electronic structure shows that the band gap of the surface is significantly narrowed with respect to the bulk. The electrons of the surface exhibit strong locality and larger effective mass.
出处 《Journal of Wuhan University of Technology(Materials Science)》 SCIE EI CAS 2013年第1期22-25,共4页 武汉理工大学学报(材料科学英文版)
基金 Founded by the National Natural Science Foundation of China (Nos.5087407, 960976018, 51002102) Youth Foundation of Taiyuan University of Technology (No.2012L037)
关键词 geometric structure electronic structure STABILITY surface energy first principles geometric structure electronic structure stability surface energy first principles
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