Quantum simulating floating phase and S = ½ critical behavior with S = 1 spin centers with anisotropy in solid-state materials
ORAL
Abstract
We propose a novel platform for creating quantum simulators by implanting S = 1 spin centers in solid-state materials. We show that with anisotropy and Zeeman splitting, a 1-d chain of S = 1 spin centers that interact through the magnetic dipole-dipole interaction can be mapped to a S = ½ XYZ + H Heisenberg spin chain. This Hamiltonian can then be tuned by changing the orientation of the chain with respect to the symmetry axes of the spin centers and by varying a small external magnetic field. The phase diagram for this system is rich with critical behavior and shows regions with a critical floating phase, an isotropic Heisenberg model, and a transverse Ising universality class. This system can be used to quantum simulate critical behavior seen in unique S = ½ XYZ + H spin chains and is the first quantum simulator for the floating phase with spin centers in solid-state materials.
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Publication: T. Losey, D. R. Candido, Y. Meurice, M. E. Flatté, S.-W. Tsai, and J. Zhang, Solid-state S=1 spin centers with zero-field splitting as quantum simulators for S=1/2 critical behavior. arXiv:2209.07516 [cond-mat.str-el] (2022).
Presenters
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Troy Losey
University of California, Riverside
Authors
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Troy Losey
University of California, Riverside
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Denis R Candido
University of Iowa
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Yannick L Meurice
University of Iowa
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Michael E Flatté
University of Iowa, Department of Physics and Astronomy, University of Iowa, IA 52242, USA
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Shan-Wen Tsai
University of California, Riverside
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Jin Zhang
University of Iowa