Effect of strain on the spin-polarization, mechanical and magnetic properties of Co2TiGe heusler alloy: A First Principle Study

Preeti Alhan , Rohilla Dholpuria , Anita Rani , Ranjan Kumar
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引用次数: 1

Abstract

In our work, we studied the effect of isotropic strain from −6% to 8% (compressive to tensile) on the Band gap, Elastic, Spin-polarization and Magnetic properties of Co2TiGe heusler alloy. We found that the half-metallicity (100% Polarization) is maintained under uniform strain from −2% to 4% but for the strain −4% to −6% the Spin-polarization drops quickly from 94% to 5.363%. From the study of electronic band structure we found that the energy band gap decreases with the increase of tensile strain and increase with the increase of compressive strain. For strain free compound the calculated magnetic moment of the material is 2.00 μB. We have found that under −4% to 8% uniform strain the total magnetic moment of the compound remains constant. But for strain −6% it decreases to 1.91 μB. We have calculated the mechanical properties of the material under different uniform strain. So, from the computed values we found the Bulk modulus, Young modulus, Shear modulus, Pugh’s ratio and Poisson ratio decreases with the tensile strain and increases with the compressive strain. With the increase of tensile strain (up to 8%) brittle nature of the material increases but with the increase of compressive strain (up to −6%) ductile of the material increases.

应变对Co2TiGe-heusler合金自旋极化、力学和磁学性能的影响:第一性原理研究
在我们的工作中,我们研究了从−6%到8%(压缩到拉伸)的各向同性应变对Co2TiGe-heusler合金的带隙、弹性、自旋极化和磁性的影响。我们发现,在−2%至4%的均匀应变下,半金属性(100%极化)保持不变,但在−4%至−6%的应变下,自旋极化从94%迅速下降到5.363%。通过对电子能带结构的研究,我们发现能带隙随拉伸应变的增加而减小,随压缩应变的增加。对于无应变化合物,材料的计算磁矩为2.00μB。我们发现,在−4%至8%的均匀应变下,化合物的总磁矩保持不变。但对于应变−6%,它降低到1.91μB。我们计算了材料在不同均匀应变下的力学性能。因此,从计算值中,我们发现体积模量、杨氏模量、剪切模量、Pugh比和泊松比随拉伸应变而减小,随压缩应变而增大。随着拉伸应变(高达8%)的增加,材料的脆性增加,但随着压缩应变(高至−6%)的增加。材料的韧性增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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