Simulating decoherence of coupled two spin qubits using generalized
cluster correlation expansion
- URL: http://arxiv.org/abs/2402.18722v1
- Date: Wed, 28 Feb 2024 21:46:32 GMT
- Title: Simulating decoherence of coupled two spin qubits using generalized
cluster correlation expansion
- Authors: Xiao Chen, Silas Hoffman, James N. Fry, Hai-Ping Cheng
- Abstract summary: We study the coherence of two coupled spin qubits in the presence of a bath of nuclear spins.
In our model, two electron spin qubits coupled with isotropic exchange or magnetic dipolar interactions interact with an environment of random nuclear spins.
- Score: 2.7354851983299784
- License: http://creativecommons.org/licenses/by-nc-sa/4.0/
- Abstract: We study the coherence of two coupled spin qubits in the presence of a bath
of nuclear spins simulated using generalized cluster correlation expansion
(gCCE) method. In our model, two electron spin qubits coupled with isotropic
exchange or magnetic dipolar interactions interact with an environment of
random nuclear spins. We study the time-evolution of the two-qubit reduced
density matrix (RDM) and resulting decay of the off diagonal elements,
corresponding to decoherence, which allows us to calculate gate fidelity in the
regime of pure dephasing. We contrast decoherence when the system undergoes
free evolution and evolution with dynamical decoupling pulses applied.
Moreover, we study the dependence of decoherence on external magnetic field and
system parameters which mimic realistic spin qubits, emphasizing magnetic
molecules. Lastly, we comment on the application and limitations of gCCE in
simulating nuclear-spin induced two-qubit relaxation processes.
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