论文标题
X射线光谱和第一原理计算研究的ZR1-XALXN纳米复合材料的界面键合
Interface Bonding of Zr1-xAlxN Nanocomposites Investigated by X-ray Spectroscopies and First Principles Calculations
论文作者
论文摘要
ZRN-ALN纳米复合材料中的电子结构,化学键和界面成分在亚稳态ZR1-XALXN的薄膜沉积过程中形成的(X = 0.0,0.0,0.12,0.26,0.40)由弹性X射线散射/X射线发射和X-RAY吸收量相比,研究角动量最终状态。使用第一原则所有电子全电位计算,将实验光谱与不同的接口模型系统进行比较,其中核心状态被完全相对论。如这项工作所示,X射线光谱学的大量灵敏度和元素选择性使得在立方和六边形晶体之间的接口处探测对称性和轨道方向。我们展示了电子结构如何从立方ZRN的局部八面体键对称性发展,这些对称是将Al含量扭曲成更复杂的键合的扭曲。这导致了三种不同的键合,源自具有分离的Zrn和层状Aln nanocrystalline沉淀物的半耦合界面。元素之间增加的化学位移和电荷转移会随着AL含量的增加而发生,并影响键强度并提高电阻率。
The electronic structure, chemical bonding and interface component in ZrN-AlN nanocomposites formed by phase separation during thin film deposition of metastable Zr1-xAlxN (x=0.0, 0.12, 0.26, 0.40) is investigated by resonant inelastic X-ray scattering/X-ray emission and X-ray absorption spectroscopy and compared to first-principles calculations including transitions between orbital angular momentum final states. The experimental spectra are compared with different interface-slab model systems using first-principle all electron full-potential calculations where the core states are treated fully relativistic. As shown in this work, the bulk sensitivity and element selectivity of X-ray spectroscopy enables to probe the symmetry and orbital directions at interfaces between cubic and hexagonal crystals. We show how the electronic structure develop from local octahedral bond symmetry of cubic ZrN that distorts for increasing Al content into more complex bonding. This results in three different kinds of bonding originating from semi-coherent interfaces with segregated ZrN and lamellar AlN nanocrystalline precipitates. An increasing chemical shift and charge transfer between the elements takes place with increasing Al content and affects the bond strength and increases resistivity.