论文标题

可旋转和密度分辨量子气体显微镜的稳健双层电荷泵送

Robust Bilayer Charge-Pumping for Spin- and Density-Resolved Quantum Gas Microscopy

论文作者

Koepsell, Joannis, Hirthe, Sarah, Bourgund, Dominik, Sompet, Pimonpan, Vijayan, Jayadev, Salomon, Guillaume, Gross, Christian, Bloch, Immanuel

论文摘要

量子气显微镜已成为一种在微观水平探测量子多体系统的有力新方法。但是,由于对特定原子物种施加了强大的要求,并限制了模拟的晶格几何形状和大小,因此分层或有效的自旋分辨读数方法仍然很少。在这里,我们提出了一种新型的高保真双层读数,可用于具有任意几何形状的二维系统的全旋和密度分辨量子显微镜。我们的技术利用了初始的船尾盖拉赫分裂成高度稳定的垂直晶格的相邻层,然后泵送后续的电荷泵送,将层换成$ 21 \,μ$ m。这种分离实现了每一层的独立高分辨率图像。我们通过自旋和密度分辨的二维费米 - 哈伯德系统基准测试我们的方法。我们的技术还可以访问高级熵工程方案,光谱方法或可调双层系统的实现。

Quantum gas microscopy has emerged as a powerful new way to probe quantum many-body systems at the microscopic level. However, layered or efficient spin-resolved readout methods have remained scarce as they impose strong demands on the specific atomic species and constrain the simulated lattice geometry and size. Here we present a novel high-fidelity bilayer readout, which can be used for full spin- and density-resolved quantum gas microscopy of two-dimensional systems with arbitrary geometry. Our technique makes use of an initial Stern-Gerlach splitting into adjacent layers of a highly-stable vertical superlattice and subsequent charge pumping to separate the layers by $21\,μ$m. This separation enables independent high-resolution images of each layer. We benchmark our method by spin- and density-resolving two-dimensional Fermi-Hubbard systems. Our technique furthermore enables the access to advanced entropy engineering schemes, spectroscopic methods or the realization of tunable bilayer systems.

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