论文标题

使用拉曼光谱法探测分子光谱函数和非常规配对

Probing molecular spectral functions and unconventional pairing using Raman spectroscopy

论文作者

Diessel, Oriana K., von Milczewski, Jonas, Christianen, Arthur, Schmidt, Richard

论文摘要

与超电荷费米气体相互作用的杂质可以形成极性状态或穿着的分子状态,其中杂质与一个气体颗粒形成结合状态。该分子状态具有丰富的物理学,包括向极化状态的一阶过渡和在小相互作用下有效质量。但是,这些功能在实验上仍然无法访问。在这项工作中,我们从理论上展示了如何使用最先进的冷原子拉曼光谱技术在激发态下直接制备分子状态。在超强耦合极限中初始化该系统,其中摩尔龙的结合能远大于费米能,我们的协议映射了分子的动量依赖性光谱功能。使用图表方法,我们进一步表明,分子光谱函数是难以捉摸的Fulde-Ferell-Larkin-ovchinnikov阶段的直接前体,该阶段是为效率的效率杂质颗粒而实现的。我们的结果为对量子多体环境中的复合颗粒如何形成的系统理解铺平了道路,并为开发新方案提供了观察量子多体系统外来阶段的基础。

An impurity interacting with an ultracold Fermi gas can form either a polaron state or a dressed molecular state in which the impurity forms a bound state with one gas particle. This molecular state features rich physics, including a first-order transition to the polaron state and a negative effective mass at small interactions. However, these features have remained so far experimentally inaccessible. In this work we show theoretically how the molecular state can be directly prepared experimentally even in its excited state using state-of-the-art cold atom Raman spectroscopy techniques. Initializing the system in the ultra-strong coupling limit, where the binding energy of the molaron is much larger than the Fermi energy, our protocol maps out the momentum-dependent spectral function of the molecule. Using a diagrammatic approach we furthermore show that the molecular spectral function serves as a direct precursor of the elusive Fulde-Ferell-Larkin-Ovchinnikov phase, which is realized for a finite density of fermionic impurity particles. Our results pave the way to a systematic understanding of how composite particles form in quantum many-body environments and provide a basis to develop new schemes for the observation of exotic phases of quantum many-body systems.

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