Universität Rostock, Institut für Physik, D-18051 Rostock, Germany.
Phys Rev Lett. 2014 Apr 11;112(14):145007. doi: 10.1103/PhysRevLett.112.145007.
We perform ab initio simulations based on finite-temperature density functional theory in order to determine the static and dynamic ion-ion structure factor in aluminum. We calculate the dynamic structure factor via the intermediate scattering function and extract the dispersion relation for the collective excitations. The results are compared with available experimental x-ray scattering data. Very good agreement is obtained for the liquid metal domain. In addition we perform simulations for warm dense aluminum in order to obtain the ion dynamics in this strongly correlated quantum regime. We determine the sound velocity for both liquid and warm dense aluminum which can be checked experimentally using narrow-bandwidth free electron laser radiation.
我们基于有限温度密度泛函理论进行了从头算模拟,以确定铝中的静态和动态离子-离子结构因子。我们通过中间散射函数计算了动态结构因子,并提取了集体激发的色散关系。结果与现有的实验 X 射线散射数据进行了比较。在液态金属区域,我们得到了非常好的一致性。此外,我们还对温暖致密的铝进行了模拟,以获得这个强关联量子区域中的离子动力学。我们确定了液态和温暖致密铝的声速,这可以使用窄带自由电子激光辐射进行实验验证。