4.6 Article

Crosstalk- and charge-noise-induced multiqubit decoherence in exchange-coupled quantum dot spin qubit arrays

Journal

PHYSICAL REVIEW B
Volume 105, Issue 24, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.105.245413

Keywords

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Funding

  1. Laboratory for Physical Sciences

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This study determines the decoherence time in a system of exchange-coupled electronic spin qubits by calculating the return probability. The multiqubit geometry is found to play a crucial role in the decoherence time.
We determine the interqubit crosstalk- and charge-noise-induced decoherence time T-2* for a system of L exchange-coupled electronic spin qubits in arrays of size L=3-14 for a number of different multiqubit geometries by directly calculating the return probability. We compare the behavior of the return probability to other quantities, namely, the average spin, the Hamming distance, and the entanglement entropy. In all cases, we use a starting state with alternating spins, vertical bar Psi(0)> = vertical bar down arrow up arrow down arrow...>. We show that a power law behavior, T-2*proportional to L-gamma, is a good fit to the results for the chain and ring geometries as a function of the number of qubits and provide numerical results for the exponent gamma. We find that T-2* depends crucially on the multiqubit geometry of the system. We also calculate the expectation value of one of the spins, the Hamming distance, and the entanglement entropy and show that they are good proxies for the return probability for measuring T-2*. A key finding is that T-2* decreases with increasing L. We also demonstrate that these results may be understood in terms of perturbation theory and its breakdown.

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