论文标题
氦离子合奏的相干控制
Coherent control of an Helium-Ion ensemble
论文作者
论文摘要
Attsond脉冲可以在连贯的过程中电离原子。但是,由于新出现的片段是纠缠的,因此每个片段仅保留最初连贯性的一小部分,因此限制了引导离子后续演变的机会。在这项工作中,我们使用\ emph {ab intio}模拟氦气在$ 2S/2P $阈值上方的泵探针电离来演示如何控制这种连贯性的损失。得益于$ 2 \ ell n \ ell' $州的参与,离子$ 2S $和$ 2p $状态之间的连贯性(在非相关性限制中是退化)导致固定的,延迟依赖的电偶极子。从偶极子的Picsecond实时跳动,这是由$ n = 2 $歧管的精细结构分裂引起的,可以重建所有原始的离子相干,包括在抗乳脚型旋转状态之间,这是对AttoSecond Photosssion中相关效应的敏感探针。
Attosecond pulses can ionize atoms in a coherent process. Since the emerging fragments are entangled, however, each preserves only a fraction of the initial coherence, thus limiting the chance of guiding the ion subsequent evolution. In this work, we use \emph{ab initio} simulations of pump-probe ionization of helium above the $2s/2p$ threshold to demonstrate how this loss of coherence can be controlled. Thanks to the participation of $2\ell n\ell'$ states, coherence between the ionic $2s$ and $2p$ states, which are degenerate in the non-relativistic limit, results in a stationary, delay-dependent electric dipole. From the picosecond real-time beating of the dipole, caused by the fine-structure splitting of the $n=2$ manifold, it is possible to reconstruct all original ion coherences, including between antiparallel-spin states, which are sensitive probe of relativistic effects in attosecond photoemission.