Analysis and mitigation of residual exchange coupling in linear spin
qubit arrays
- URL: http://arxiv.org/abs/2308.11308v2
- Date: Thu, 14 Dec 2023 17:43:28 GMT
- Title: Analysis and mitigation of residual exchange coupling in linear spin
qubit arrays
- Authors: Irina Heinz, Adam R. Mills, Jason R. Petta and Guido Burkard
- Abstract summary: This study aims to investigate the impact of coherent error matrices in gate set tomography by employing a double quantum dot.
We evaluate the infidelity caused by residual exchange between spins and compare various mitigation approaches.
In particular, we demonstrate the influence of residual exchange on a single-qubit $Y$ gate and the native two-qubit SWAP gate in a linear chain.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: In recent advancements of quantum computing utilizing spin qubits, it has
been demonstrated that this platform possesses the potential for implementing
two-qubit gates with fidelities exceeding 99.5%. However, as with other qubit
platforms, it is not feasible to completely turn qubit couplings off. This
study aims to investigate the impact of coherent error matrices in gate set
tomography by employing a double quantum dot. We evaluate the infidelity caused
by residual exchange between spins and compare various mitigation approaches,
including the use of adjusted timing through simple drives, considering
different parameter settings in the presence of charge noise. Furthermore, we
extend our analysis to larger arrays of exchange-coupled spin qubits to provide
an estimation of the expected fidelity. In particular, we demonstrate the
influence of residual exchange on a single-qubit $Y$ gate and the native
two-qubit SWAP gate in a linear chain. Our findings emphasize the significance
of accounting for residual exchange when scaling up spin qubit devices and
highlight the tradeoff between the effects of charge noise and residual
exchange in mitigation techniques.
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