论文标题
Rydberg气体的二维光谱
Two-dimensional spectroscopy of Rydberg gases
论文作者
论文摘要
二维(2D)光谱法使用多个电磁脉冲来推断复杂系统的性质。目标系统的范式类别是分子骨料,为此,可以获得有关本征态,各种类型的静态和动态障碍以及放松过程的信息。但是,如果没有精确了解信号成分如何与微观哈密顿参数和系统伴有相互作用的相互作用,则很难解释二维光谱。在这里,我们表明,二维光谱可以在微波域中映射到高度可控的Rydberg量子模拟器。通过将2D光谱移植到Rydberg Atoms,我们首先打开了其实验量子模拟的可能性,如果参数和相互作用是众所周知的。其次,该技术可能会为系统状态之间的相干访问和区分Rydberg气体中不同类型的破坏机制的能力提供其他处理。我们研究了使用多个相干微波脉冲和相位循环技术来隔离信号成分的特定实现的要求。
Two-dimensional (2D) spectroscopy uses multiple electromagnetic pulses to infer the properties of a complex system. A paradigmatic class of target systems are molecular aggregates, for which one can obtain information on the eigenstates, various types of static and dynamic disorder and on relaxation processes. However, two-dimensional spectra can be difficult to interpret without precise knowledge of how the signal components relate to microscopic Hamiltonian parameters and system-bath interactions. Here we show that two-dimensional spectroscopy can be mapped in the microwave domain to highly controllable Rydberg quantum simulators. By porting 2D spectroscopy to Rydberg atoms, we firstly open the possibility of its experimental quantum simulation, in a case where parameters and interactions are very well known. Secondly, the technique may provide additional handles for experimental access to coherences between system states and the ability to discriminate different types of decoherence mechanisms in Rydberg gases. We investigate the requirements for a specific implementation utilizing multiple phase coherent microwave pulses and a phase cycling technique to isolate signal components.