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Design and benchmarks for emulating Kondo dynamics on a quantum chip
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Motivated by recent advances in digital quantum simulation and the overall prospective of solving correlated many-electron problems using quantum algorithms, we design a gate-based quantum circuit that emulates the dynamics of the Kondo impurity model. We numerically determine the impurity magnetization, entanglement between impurity and fermionic sites and energy as a function of time (i.e.~circuit depth) for various initial states and find universal long-time dynamics. We complement the numerical simulations for moderate system size with an asymptotically exact analytical solution that is effective in the limit of large system sizes and for starting states corresponding to a filled Fermi sea. This work opens up the perspective of studying the dynamics of electronic quantum many-body states on quantum chips of the NISQ era.
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Dissipative Kondo physics in the Anderson Impurity Model with two-body losses
Two-body losses in an Anderson impurity preserve Kondo correlations at weak and strong dissipation while destroying them at intermediate rates.
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