Qubit decoherence under two-axis coupling to low-frequency noises
- URL: http://arxiv.org/abs/2112.03438v1
- Date: Tue, 7 Dec 2021 01:22:05 GMT
- Title: Qubit decoherence under two-axis coupling to low-frequency noises
- Authors: Guy Ramon and {\L}ukasz Cywi\'nski
- Abstract summary: We present a theory that provides a unified platform to study dynamics of a qubit subjected to two perpendicular low-frequency noises.
The theory is demonstrated by the commonly encountered case of power-law noise spectra.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Many solid-state qubit systems are afflicted by low frequency noise
mechanisms that operate along two perpendicular axes of the Bloch sphere.
Depending on the qubit's control fields, either noise can be longitudinal or
transverse to the qubit's quantization axis, thus affecting its dynamics in
distinct ways, generally contributing to decoherence that goes beyond pure
dephasing. Here we present a theory that provides a unified platform to study
dynamics of a qubit subjected to two perpendicular low-frequency noises
(assumed to be Gaussian and uncorrelated) under dynamical decoupling pulse
sequences. The theory is demonstrated by the commonly encountered case of
power-law noise spectra, where approximate analytical results can be obtained.
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