Realization of a doped quantum antiferromagnet with dipolar tunnelings in a Rydberg tweezer array
Abstract
Doping an antiferromagnetic 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 tunneling of hole dopants and antiferromagnetic (AFM) spin interactions , theoretical and numerical studies often focus on the paradigmatic - model, and the direct analog 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) tunnelings and hard-core bosonic holes using a Rydberg tweezer platform. We utilize coherent dynamics between three Rydberg levels, encoding spins and holes, to implement a tunable bosonic -- model allowing us to study previously inaccessible parameter regimes. We observe dynamical phase separation between hole and spin domains for , and demonstrate the formation of repulsively bound hole pairs in a variety of spin backgrounds. The interference between NNN tunnelings and perturbative pair tunneling gives rise to light and heavy pairs depending on the sign of . 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 - and spin- models.
Keywords
Cite
@article{arxiv.2501.08233,
title = {Realization of a doped quantum antiferromagnet with dipolar tunnelings in a Rydberg tweezer array},
author = {Mu Qiao and Gabriel Emperauger and Cheng Chen and Lukas Homeier and Simon Hollerith and Guillaume Bornet and Romain Martin and Bastien Gély and Lukas Klein and Daniel Barredo and Sebastian Geier and Neng-Chun Chiu and Fabian Grusdt and Annabelle Bohrdt and Thierry Lahaye and Antoine Browaeys},
journal= {arXiv preprint arXiv:2501.08233},
year = {2025}
}
Comments
8 pages, 5 figures