论文标题
Rydberg宏观二聚体的微观电子结构断层扫描
Microscopic electronic structure tomography of Rydberg macrodimers
论文作者
论文摘要
由于内部自由度和局部坐标的多样性,这些分子的精确控制和研究是具有挑战性的。采用量子气显微镜来定位和解决Rydberg宏大二聚体状态中的原子几乎所有这些挑战,并可以独特地进入分子框架。在这里,我们证明了这种方法的力量,并对不同分子对称性的首次光缔合研究进行了首次光缔合研究,其中分子取向相对于施加的磁场,激发光的极化和初始原子态得到完全控制。观察到的特征依赖性允许分子状态的电子结构断层扫描。我们还观察到方向依赖的zeeman偏移,并揭示了由大二聚体状态的超精细相互作用引起的显着影响。最后,我们通过在两个交叉对电位的能量附近开设一个间隙来证明静电结合电势的受控工程。
Precise control and study of molecules is challenging due to the variety of internal degrees of freedom and local coordinates that are typically not controlled in an experiment. Employing quantum gas microscopy to position and resolve the atoms in Rydberg macrodimer states solves almost all of these challenges and enables unique access to the molecular frame. Here, we demonstrate the power of this approach and present first photoassociation studies for different molecular symmetries in which the molecular orientation relative to an applied magnetic field, the polarization of the excitation light and the initial atomic state are fully controlled. The observed characteristic dependencies allow for an electronic structure tomography of the molecular state. We additionally observe an orientation-dependent Zeeman shift and reveal a significant influence on it caused by the hyperfine interaction of the macrodimer state. Finally, we demonstrate controlled engineering of the electrostatic binding potential by opening a gap in the energetic vicinity of two crossing pair potentials.