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arXiv · 2112.06422

Simulation of classical Ising-like magnetism with a Mott insulator of paired atoms

Abstract

Quantum simulation of the XXZ model with a two-component Bose or Fermi Hubbard model based on a Mott insulator background has been widely used in the investigations of quantum magnetism with ultracold neutral atoms. In most cases, the diagonal spin-spin interaction is always accompanied by a large spin-exchange interaction which hinders the formation of long-range magnetic order at low temperature. Here we show that the spin-exchange interaction can be strongly reduced in a Mott insulator of paired atoms, while the diagonal spin-spin interaction remains unaffected. Thus, the effective magnetic model is quite close to an exact classical Ising model in the textbook. And we analysed an experimentally achievable three-component Fermi-Hubbard model of $\mathrm{{}^{6}Li}$ with two hyperfine levels of atoms paired in the lattice. We find the long-range antiferromagnetic order of such a three-component Fermi-Hubbard model can be much stronger than that of a typical two-component Fermi-Hubbard model at low temperature. And we discussed the possiblity of simulating an exact two-dimensional ferromagnetic Ising model in a Mott insulator of paired bosonic atoms. Our results may be useful for experimental investigation of the long-range Ising-like magnetism with ultracold neutral atoms under thermal equilibrium.

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Ren Liao, Jingxin Sun, Hui Li, Shifeng Yang, Pengju Zhao, Xinyi Huang, Wei Xiong, Xiaoji Zhou, Dingping Li, Xiongjun Liu, Xuzong Chen. 2022-08-03. Simulation of classical Ising-like magnetism with a Mott insulator of paired atoms. https://doi.org/10.1103/physreva.106.053308

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