论文标题

第一原理的远程四极电子电动相互作用

Long-range quadrupole electron-phonon interaction from first principles

论文作者

Park, Jinsoo, Zhou, Jin-Jian, Jhalani, Vatsal A., Dreyer, Cyrus E., Bernardi, Marco

论文摘要

材料中的晶格振动以远距离(偶极子和四极杆)和短距离(章鱼和更高)电势的形式引起电子动力学的扰动。偶极fröhlich项可以包含在当前的第一原理电子phonon($ e $ -ph)计算中,并且仅在极性材料中存在。极性材料和非极性材料都存在四极$ e $ $ ph的相互作用,但目前无法从第一原理计算出来。在这里,我们展示了一种计算四极$ e $ -ph交互的方法,并将其从头算计算中的$ e $ ph矩阵元素。通过与直接密度函数扰动理论计算进行比较来证明该方法的准确性。我们将我们的方法应用于硅,作为非极性半导体和四方PBTIO $ _3 $作为极性压电材料的情况。在这两种材料中,我们都发现四杆术语强烈影响$ e $ ph矩阵元素。对不同声子模式的$ E $ -PH交互的分析表明,四极术语主要影响硅和PBTIO $ _3 $中的声学模式,尽管所有模式都需要所有模式以实现定量精确度。四极$ e $ ph相互作用对电子散射过程和传输的影响很重要。我们的方法可以在广泛的非极性,极性和压电材料中对$ e $ ph的相互作用进行准确的研究。

Lattice vibrations in materials induce perturbations on the electron dynamics in the form of long-range (dipole and quadrupole) and short-range (octopole and higher) potentials. The dipole Fröhlich term can be included in current first-principles electron-phonon ($e$-ph) calculations and is present only in polar materials. The quadrupole $e$-ph interaction is present in both polar and nonpolar materials, but currently it cannot be computed from first principles. Here we show an approach to compute the quadrupole $e$-ph interaction and include it in ab initio calculations of $e$-ph matrix elements. The accuracy of the approach is demonstrated by comparing with direct density functional perturbation theory calculations. We apply our method to silicon as a case of a nonpolar semiconductor and tetragonal PbTiO$_3$ as a case of a polar piezoelectric material. In both materials we find that the quadrupole term strongly impacts the $e$-ph matrix elements. Analysis of $e$-ph interactions for different phonon modes reveals that the quadrupole term mainly affects optical modes in silicon and acoustic modes in PbTiO$_3$, although the quadrupole term is needed for all modes to achieve quantitative accuracy. The effect of the quadrupole $e$-ph interaction on electron scattering processes and transport is shown to be important. Our approach enables accurate studies of $e$-ph interactions in broad classes of nonpolar, polar and piezoelectric materials.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源