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里德堡镊子阵列中掺杂量子反铁磁体的实现。

Realization of a doped quantum antiferromagnet in a Rydberg tweezer array.

作者信息

Qiao Mu, Emperauger Gabriel, Chen Cheng, Homeier Lukas, Hollerith Simon, Bornet Guillaume, Martin Romain, Gély Bastien, Klein Lukas, Barredo Daniel, Geier Sebastian, Chiu Neng-Chun, Grusdt Fabian, Bohrdt Annabelle, Lahaye Thierry, Browaeys Antoine

机构信息

Université Paris-Saclay, Institut d'Optique Graduate School, CNRS, Laboratoire Charles Fabry, Palaiseau Cedex, France.

Institute of Physics, Chinese Academy of Sciences, Beijing, China.

出版信息

Nature. 2025 Aug;644(8078):889-895. doi: 10.1038/s41586-025-09377-1. Epub 2025 Aug 20.

DOI:10.1038/s41586-025-09377-1
PMID:40836087
Abstract

Doping an antiferromagnetic (AFM) Mott insulator is central to our understanding of a variety of phenomena in strongly correlated electrons, including high-temperature superconductors. To describe the competition between tunnelling t of hole dopants and AFM spin interactions J, theoretical and numerical studies often focus on the paradigmatic t-J model and the direct analogue quantum simulation of this model in the relevant regime of high-particle density has long been sought. Here we realize a doped quantum antiferromagnet with next-nearest-neighbour (NNN) tunnellings t' (refs. ) and hard-core bosonic holes using a Rydberg tweezer platform. We use coherent dynamics between three Rydberg levels, encoding spins and holes, to implement a tunable bosonic t-J-V model allowing us to study previously inaccessible parameter regimes. We observe dynamical phase separation between hole and spin domains for |t/J| ≪ 1 and demonstrate the formation of repulsively bound hole pairs in a variety of spin backgrounds. The interference between NNN tunnellings t' and perturbative pair tunnelling gives rise to light and heavy pairs depending on the sign of t. Using the single-site control allows us to study the dynamics of a single hole in 2D square lattice (anti)ferromagnets. The model we implement extends the toolbox of Rydberg tweezer experiments beyond spin-1/2 models to a larger class of t-J and spin-1 models.

摘要

对反铁磁(AFM)莫特绝缘体进行掺杂,对于我们理解强关联电子中的各种现象至关重要,这些现象包括高温超导体。为了描述空穴掺杂的隧穿t与AFM自旋相互作用J之间的竞争,理论和数值研究通常聚焦于典型的t-J模型,并且长期以来一直在寻求在高粒子密度的相关区域对该模型进行直接的类似量子模拟。在此,我们使用里德堡镊子平台实现了一个具有次近邻(NNN)隧穿t'(参考文献)和硬核玻色子空穴的掺杂量子反铁磁体。我们利用编码自旋和空穴的三个里德堡能级之间的相干动力学,来实现一个可调谐的玻色子t-J-V模型,这使我们能够研究以前无法达到的参数区域。对于|t/J| ≪ 1,我们观察到空穴和自旋域之间的动态相分离,并展示了在各种自旋背景下排斥束缚空穴对的形成。根据t的符号,NNN隧穿t'与微扰对隧穿之间的干涉会产生轻对和重对。利用单格点控制,我们能够研究二维正方晶格(反)铁磁体中单个空穴的动力学。我们实现的模型将里德堡镊子实验的工具箱从自旋-1/2模型扩展到了更大类别的t-J和自旋-1模型。

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