论文标题
H-他在lyman-$α$ profile dba白矮星星中引起了碰撞引起的卫星
H--He collision-induced satellite in the Lyman-$α$ profile of DBA white dwarf stars
论文作者
论文摘要
在其大气中氢的氦气主导的白矮星的光谱呈现出独特的广泛特征,以1160〜Å \/左右的蓝色翅膀为中心。在WD 1425+540中,最近在HST COS。中观察到的非常明显的是,基于从头算原子相互作用电位的新理论线轮廓,我们表明,由于渐近不可禁止过渡,此功能是碰撞诱导的卫星的签名。该准分子光谱卫星对于理解在此和其他白色矮人光谱中看到的Lyman-$α$的不对称形状至关重要。我们以前预测这种吸收特征的工作受到分子电位的限制,这些分子电位不足以遵循原子相互作用与光谱精度到大分离的渐近极限。开发了H-e系统最低电子状态的新的势能曲线和电子偶极转换矩,以准确地解释了从辐射H原子在辐射H原子内的化学状态在各个距离内的行为。我们使用碰撞的原子光谱线的一般统一理论来描述对这些潜力的氢液体 - $α$的严格处理,并通过氢和中性氦的辐射碰撞进行了一项新的研究。这些结果使DBA白色矮人大气中的辐射转运的从头算建模。
The spectra of helium-dominated white dwarf stars with hydrogen in their atmosphere present a distinctive broad feature centered around 1160~Å\/ in the blue wing of the Lyman-$α$ line. It is extremely apparent in WD 1425+540 recently observed with HST COS. With new theoretical line profiles based on ab initio atomic interaction potentials we show that this feature is a signature of a collision-induced satellite due to an asymptotically forbidden transition. This quasi-molecular spectral satellite is crucial to understanding the asymmetrical shape of Lyman-$α$ seen in this and other white dwarf spectra. Our previous work predicting this absorption feature was limited by molecular potentials that were not adequate to follow the atomic interactions with spectroscopic precision to the asymptotic limit of large separation. A new set of potential energy curves and electronic dipole transition moments for the lowest electronic states of the H--He system were developed to account accurately for the behavior of the atomic interactions at all distances, from the chemical regime within 1~Å\/ out to where the radiating H atoms are not significantly perturbed by their neighbors. We use a general unified theory of collision-broadened atomic spectral lines to describe a rigorous treatment of hydrogen Lyman-$α$ with these potentials and present a new study of its broadening by radiative collisions of hydrogen and neutral helium. These results enable ab initio modeling of radiative transport in DBA white dwarf atmospheres.