The SMART protocol -- Pulse engineering of a global field for robust and
universal quantum computation
- URL: http://arxiv.org/abs/2108.00776v3
- Date: Fri, 27 Aug 2021 01:42:35 GMT
- Title: The SMART protocol -- Pulse engineering of a global field for robust and
universal quantum computation
- Authors: Ingvild Hansen, Amanda E. Seedhouse, Andre Saraiva, Arne Laucht,
Andrew S. Dzurak and Chih Hwan Yang
- Abstract summary: We show that by modulating a global field simultaneously applied to the entire array, we are able to encode qubits that are less sensitive to the statistical scatter in qubit resonance frequency and microwave amplitude fluctuations.
This work provides a high-fidelity qubit operation scheme in a global field, significantly improving the prospects for scalability of spin-based quantum computer architectures.
- Score: 0.7080990243618377
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Global control strategies for arrays of qubits are a promising pathway to
scalable quantum computing. A continuous-wave global field provides decoupling
of the qubits from background noise. However, this approach is limited by
variability in the parameters of individual qubits in the array. Here we show
that by modulating a global field simultaneously applied to the entire array,
we are able to encode qubits that are less sensitive to the statistical scatter
in qubit resonance frequency and microwave amplitude fluctuations, which are
problems expected in a large scale system. We name this approach the SMART
(Sinusoidally Modulated, Always Rotating and Tailored) qubit protocol. We show
that there exist optimal modulation conditions for qubits in a global field
that robustly provide improved coherence times. We discuss in further detail
the example of spins in silicon quantum dots, in which universal one- and
two-qubit control is achieved electrically by controlling the spin-orbit
coupling of individual qubits and the exchange coupling between spins in
neighbouring dots. This work provides a high-fidelity qubit operation scheme in
a global field, significantly improving the prospects for scalability of
spin-based quantum computer architectures.
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