Characterization of high-fidelity Raman qubit gates
- URL: http://arxiv.org/abs/2310.04228v1
- Date: Fri, 6 Oct 2023 13:15:24 GMT
- Title: Characterization of high-fidelity Raman qubit gates
- Authors: Stancho G. Stanchev and Nikolay V. Vitanov
- Abstract summary: We present a simple and fast tomographic method to measure the errors of Raman qubit gates possessing the Morris-Shore dynamic symmetry.
The method is based on repeating the same gate multiple times, which amplifies the small coherent errors to sufficiently large values.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Raman qubits, represented by two ground or metastable quantum states coupled
via an intermediate state, hold some advantages over directly coupled qubits,
most notably much longer radiative lifetimes, shorter gate duration and lower
radiation intensity due to using electric-dipole allowed optical transitions.
They are also relatively simple to implement and control, making them an
attractive option for building quantum gates for quantum computers. In this
work, we present a simple and fast tomographic method to measure the errors of
Raman qubit gates possessing the Morris-Shore dynamic symmetry. The latter
occurs when the qubit states are on two-photon resonance and the driving fields
have the same time dependence. The method is based on repeating the same gate
multiple times, which amplifies the small coherent errors to sufficiently large
values, which can be measured with high accuracy and precision. Then the
(small) gate errors can be determined from the amplified errors by using the
analytical connections between them.
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