Experimental Realization of Rabi-Hubbard Model with Trapped Ions
ORAL
Abstract
Quantum simulation provides important tools in studying strongly correlated many-body systems with controllable parameters. As a hybrid of two fundamental models in quantum optics and in condensed matter physics, Rabi-Hubbard model demonstrates rich physics through the competition between local spin-boson interactions and long-range boson hopping. Here we report an experimental realization of the Rabi-Hubbard model using up to 16 trapped ions and present a controlled study of its equilibrium properties and quantum dynamics. We observe the ground-state quantum phase transition by slowly quenching the coupling strength, and measure the quantum dynamical evolution in various parameter regimes. With the magnetization and the spin-spin correlation as probes, we verify the prediction of the model Hamiltonian by comparing theoretical results in small system sizes with experimental observations. For larger-size systems of 16 ions and 16 phonon modes, the effective Hilbert space dimension exceedss 257, whose dynamics is intractable for classical supercomputers.
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Publication: Mei, Quanxin, Bowen Li, Yukai Wu, Minglei Cai, Ye Wang, Lin Yao, Zichao Zhou, and Luming Duan. "Experimental Realization of Rabi-Hubbard Model with Trapped Ions." arXiv preprint arXiv:2110.03227 (2021).
Presenters
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Quanxin Mei
Tsinghua University
Authors
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Quanxin Mei
Tsinghua University
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Bowen Li
Tsinghua University
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Yukai Wu
Tsinghua University
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Minglei Cai
Tsinghua University
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Ye Wang
Tsinghua University
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Lin Yao
Tsinghua University
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Zichao Zhou
Tsinghua University
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Luming Duan
Tsinghua University