Pulse-controlled qubit in semiconductor double quantum dots
- URL: http://arxiv.org/abs/2303.04823v1
- Date: Wed, 8 Mar 2023 19:00:02 GMT
- Title: Pulse-controlled qubit in semiconductor double quantum dots
- Authors: Aleksander Lasek, Hugo V. Lepage, Kexin Zhang, Thierry Ferrus, and
Crispin H. W. Barnes
- Abstract summary: We present a numerically-optimized multipulse framework for the quantum control of a single-electron charge qubit.
A novel control scheme manipulates the qubit adiabatically, while also retaining high speed and ability to perform a general single-qubit rotation.
- Score: 57.916342809977785
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We present a numerically-optimized multipulse framework for the quantum
control of a single-electron charge qubit. Our framework defines a set of pulse
sequences, necessary for the manipulation of the ideal qubit basis, that avoids
errors associated with excitations outside the computational subspace. A novel
control scheme manipulates the qubit adiabatically, while also retaining high
speed and ability to perform a general single-qubit rotation. This basis
generates spatially localized logical qubit states, making readout
straightforward. We consider experimentally realistic semiconductor qubits with
finite pulse rise and fall times and determine the fastest pulse sequence
yielding the highest fidelity. We show that our protocol leads to improved
control of a qubit. We present simulations of a double quantum dot in a
semiconductor device to visualize and verify our protocol. These results can be
generalized to other physical systems since they depend only on pulse rise and
fall times and the energy gap between the two lowest eigenstates.
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