Control of open quantum systems: Manipulation of a qubit coupled to a thermal bath by an external driving field

Fuente: arXiv
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Main Authors: Sun, Haoran, Galperin, Michael
Format: Preprint
Published: 2024
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author Sun, Haoran
Galperin, Michael
author_facet Sun, Haoran
Galperin, Michael
contents Fast and reliable manipulation with qubits is fundamental for any quantum technology. The implementation of these manipulations in physical systems is the focus of studies involving optimal control theory. Realistic physical devices are open quantum systems. So far, studies in optimal control theory have primarily utilized the Redfield/Lindblad quantum master equation to simulate the dynamics of such systems. However, this Markov description is not always sufficient. Here, we present a study of qubit control utilizing the nonequilibrium Green's function method. We compare the traditional master equation with more general Green's function results and demonstrate that even in the parameter regime suitable for the application of the Redfield/Lindblad approach, the two methods yield drastically different results when addressing evolution involving mixed states. In particular, we find that, in addition to predicting different optimal driving profiles, a more accurate description of system evolution enables the system to reach the desired final state much more quickly. We argue that the primary reason for this is the significance of the non-Markov description of driven system dynamics due to the effect of time-dependent driving on dissipation.
format Preprint
id arxiv_https___arxiv_org_abs_2412_12624
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Control of open quantum systems: Manipulation of a qubit coupled to a thermal bath by an external driving field
Sun, Haoran
Galperin, Michael
Quantum Physics
Mesoscale and Nanoscale Physics
Chemical Physics
Fast and reliable manipulation with qubits is fundamental for any quantum technology. The implementation of these manipulations in physical systems is the focus of studies involving optimal control theory. Realistic physical devices are open quantum systems. So far, studies in optimal control theory have primarily utilized the Redfield/Lindblad quantum master equation to simulate the dynamics of such systems. However, this Markov description is not always sufficient. Here, we present a study of qubit control utilizing the nonequilibrium Green's function method. We compare the traditional master equation with more general Green's function results and demonstrate that even in the parameter regime suitable for the application of the Redfield/Lindblad approach, the two methods yield drastically different results when addressing evolution involving mixed states. In particular, we find that, in addition to predicting different optimal driving profiles, a more accurate description of system evolution enables the system to reach the desired final state much more quickly. We argue that the primary reason for this is the significance of the non-Markov description of driven system dynamics due to the effect of time-dependent driving on dissipation.
title Control of open quantum systems: Manipulation of a qubit coupled to a thermal bath by an external driving field
topic Quantum Physics
Mesoscale and Nanoscale Physics
Chemical Physics
url https://arxiv.org/abs/2412.12624