Adiabatic Dynamical-Decoupling Based Control of Nuclear Spin Registers
- URL: http://arxiv.org/abs/2107.01931v1
- Date: Mon, 5 Jul 2021 10:54:13 GMT
- Title: Adiabatic Dynamical-Decoupling Based Control of Nuclear Spin Registers
- Authors: O.T. Whaites, J. Randall, T.H. Taminiau and T.S. Monteiro
- Abstract summary: We introduce a technique whereby adiabatic gates arise from the dynamical decoupling protocols that simultaneously extend coherence.
We show that the technique enables polarisation, one-shot flips and state storage for nuclear spins.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: The use of the nuclear spins surrounding electron spin qubits as quantum
registers and long-lived memories opens the way to new applications in quantum
information and biological sensing. Hence, there is a need for generic and
robust forms of control of the nuclear registers. Although adiabatic gates are
widely used in quantum information, they can become too slow to outpace
decoherence. Here, we introduce a technique whereby adiabatic gates arise from
the dynamical decoupling protocols that simultaneously extend coherence. We
illustrate this pulse-based adiabatic control for nuclear spins around NV
centers in diamond. We obtain a closed-form expression from Landau-Zener theory
and show that it reliably describes the dynamics. By identifying robust Floquet
states, we show that the technique enables polarisation, one-shot flips and
state storage for nuclear spins. These results introduce a new control paradigm
that combines dynamical decoupling with adiabatic evolution.
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