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Programmable XY-type couplings through parallel spin-dependent forces on the same trapped ion motional modes

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arxiv 2307.04922 v2 pith:A5CHKADL submitted 2023-07-10 quant-ph cond-mat.othercond-mat.softcond-mat.supr-conphysics.atom-ph

Programmable XY-type couplings through parallel spin-dependent forces on the same trapped ion motional modes

classification quant-ph cond-mat.othercond-mat.softcond-mat.supr-conphysics.atom-ph
keywords sigmatrappedquantumschemeforceshamiltoniansinteractionsions
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We propose and experimentally demonstrate an analog scheme for generating XY-type ($J_{ij}^x \sigma_x^i \sigma_x^j \;$ + $J_{ij}^y \sigma_y^i \sigma_y^j \;$) Hamiltonians on trapped ion spins with independent control over the $J_{ij}^x$ and $J_{ij}^y$ terms. The Ising-type interactions $\sigma_x^i \sigma_x^j \;$ and $\sigma_y^i \sigma_y^j \;$ are simultaneously generated by employing two spin-dependent forces operating in parallel on the same set of normal modes. We analytically calculate the region of validity of this scheme, and provide numerical and experimental validation with $^{171}\rm{Yb}^+\;$ ions. This scheme inherits the programmability and scalability of the Ising-type interactions with trapped ions that have been explored in numerous quantum simulation experiments. Our approach extends the capabilities of existing trapped ion quantum simulators to access a large class of spin Hamiltonians relevant for exploring exotic quantum phases such as superfluidity and spin liquids.

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