首页> 外文期刊>Physical review >Structural, Electronic, And Magnetic Properties Of 3d Transition Metal Monatomic Chains:rnfirst-principles Calculations
【24h】

Structural, Electronic, And Magnetic Properties Of 3d Transition Metal Monatomic Chains:rnfirst-principles Calculations

机译:3d过渡金属单原子链的结构,电子和磁性:第一性原理计算

获取原文
获取原文并翻译 | 示例
           

摘要

In this paper we investigated structural, electronic, and magnetic properties of 3d (light) transition metal atomic chains using first-principles pseudopotential plane-wave calculations. Infinite periodic linear, dimerized linear, and planar zigzag chain structures, as well as their short segments consisting of finite number of atoms have been considered. Like Cu, the periodic, linear chains of Mn, Co, and Ni correspond to a local shallow minimum. However, for most of the infinite periodic chains, neither linear nor dimerized linear structures are favored; to lower their energy the chains undergo a structural transformation to form planar zigzag and dimerized zigzag geometries. Dimerization in both infinite and finite chains is much stronger than the usual Peierls distortion and appears to depend on the number of 3d electrons. As a result of dimerization, a significant energy lowering occurs which, in turn, influences the stability and physical properties. Metallic linear chain of vanadium becomes half-metallic upon dimerization. Infinite linear chain of scandium also becomes half-metallic upon transformation to the zigzag structure. An interplay between the magnetic ground state and the atomic as well as the electronic structure of the chain has been revealed. The end effects influence the geometry, the energetics, and the magnetic ground state of the finite chains. Structure optimization performed using noncollinear approximation indicates significant differences from the collinear approximation. Variation of the cohesive energy of infinite- and finite-size chains with respect to the number of 3d electrons is found to mimic the well-known bulk behavior. The spin-orbit coupling of finite chains is found to be negligibly small.
机译:在本文中,我们使用第一性原理pseudo势平面波计算研究了3d(轻型)过渡金属原子链的结构,电子和磁性。已经考虑了无限周期线性,二聚线性和平面之字形链结构,以及由有限数量的原子组成的短链段。像铜一样,锰,钴和镍的周期性线性链对应于局部浅最小值。但是,对于大多数无限周期链而言,线性或二聚线性结构均不受青睐。为了降低其能量,链经历结构转变以形成平面之字形和二聚之字形几何形状。无限链和有限链中的二聚作用比通常的Peierls畸变要强得多,并且似乎取决于3d电子的数量。由于二聚作用,发生了明显的能量降低,这反过来又影响了稳定性和物理性能。钒的金属线性链在二聚化后变为半金属。 transformation的无限线性链在转变为之字形结构时也变成半金属的。揭示了磁性基态与原子之间的相互作用以及链的电子结构。最终效应会影响有限链的几何形状,能量和磁性基态。使用非共线近似执行的结构优化表明与共线近似存在显着差异。发现无限大小链和有限大小链的内聚能相对于3d电子数量的变化模仿了众所周知的体积行为。发现有限链的自旋轨道耦合很小。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号