Time-varying quantum channel models for superconducting qubits

Abstract The decoherence effects experienced by the qubits of a quantum processor are generally characterized using the amplitude damping time (T 1) and the dephasing time (T 2). Quantum channel models that exist at the time of writing assume that these parameters are fixed and invariant. However, r...

Full description

Bibliographic Details
Main Authors: Josu Etxezarreta Martinez, Patricio Fuentes, Pedro Crespo, Javier Garcia-Frias
Format: Article
Language:English
Published: Nature Publishing Group 2021-07-01
Series:npj Quantum Information
Online Access:https://doi.org/10.1038/s41534-021-00448-5
id doaj-6d889ba8bc564ed0b548dcf9e8ae333d
record_format Article
spelling doaj-6d889ba8bc564ed0b548dcf9e8ae333d2021-07-25T11:15:29ZengNature Publishing Groupnpj Quantum Information2056-63872021-07-017111010.1038/s41534-021-00448-5Time-varying quantum channel models for superconducting qubitsJosu Etxezarreta Martinez0Patricio Fuentes1Pedro Crespo2Javier Garcia-Frias3Department of Basic Sciences, Tecnun - University of NavarraDepartment of Basic Sciences, Tecnun - University of NavarraDepartment of Basic Sciences, Tecnun - University of NavarraDepartment of Electrical and Computer Engineering, University of DelawareAbstract The decoherence effects experienced by the qubits of a quantum processor are generally characterized using the amplitude damping time (T 1) and the dephasing time (T 2). Quantum channel models that exist at the time of writing assume that these parameters are fixed and invariant. However, recent experimental studies have shown that they exhibit a time-varying (TV) behaviour. These time-dependant fluctuations of T 1 and T 2, which become even more pronounced in the case of superconducting qubits, imply that conventional static quantum channel models do not capture the noise dynamics experienced by realistic qubits with sufficient precision. In this article, we study how the fluctuations of T 1 and T 2 can be included in quantum channel models. We propose the idea of time-varying quantum channel (TVQC) models, and we show how they provide a more realistic portrayal of decoherence effects than static models in some instances. We also discuss the divergence that exists between TVQCs and their static counterparts by means of a metric known as the diamond norm. In many circumstances this divergence can be significant, which indicates that the time-dependent nature of decoherence must be considered, in order to construct models that capture the real nature of quantum devices.https://doi.org/10.1038/s41534-021-00448-5
collection DOAJ
language English
format Article
sources DOAJ
author Josu Etxezarreta Martinez
Patricio Fuentes
Pedro Crespo
Javier Garcia-Frias
spellingShingle Josu Etxezarreta Martinez
Patricio Fuentes
Pedro Crespo
Javier Garcia-Frias
Time-varying quantum channel models for superconducting qubits
npj Quantum Information
author_facet Josu Etxezarreta Martinez
Patricio Fuentes
Pedro Crespo
Javier Garcia-Frias
author_sort Josu Etxezarreta Martinez
title Time-varying quantum channel models for superconducting qubits
title_short Time-varying quantum channel models for superconducting qubits
title_full Time-varying quantum channel models for superconducting qubits
title_fullStr Time-varying quantum channel models for superconducting qubits
title_full_unstemmed Time-varying quantum channel models for superconducting qubits
title_sort time-varying quantum channel models for superconducting qubits
publisher Nature Publishing Group
series npj Quantum Information
issn 2056-6387
publishDate 2021-07-01
description Abstract The decoherence effects experienced by the qubits of a quantum processor are generally characterized using the amplitude damping time (T 1) and the dephasing time (T 2). Quantum channel models that exist at the time of writing assume that these parameters are fixed and invariant. However, recent experimental studies have shown that they exhibit a time-varying (TV) behaviour. These time-dependant fluctuations of T 1 and T 2, which become even more pronounced in the case of superconducting qubits, imply that conventional static quantum channel models do not capture the noise dynamics experienced by realistic qubits with sufficient precision. In this article, we study how the fluctuations of T 1 and T 2 can be included in quantum channel models. We propose the idea of time-varying quantum channel (TVQC) models, and we show how they provide a more realistic portrayal of decoherence effects than static models in some instances. We also discuss the divergence that exists between TVQCs and their static counterparts by means of a metric known as the diamond norm. In many circumstances this divergence can be significant, which indicates that the time-dependent nature of decoherence must be considered, in order to construct models that capture the real nature of quantum devices.
url https://doi.org/10.1038/s41534-021-00448-5
work_keys_str_mv AT josuetxezarretamartinez timevaryingquantumchannelmodelsforsuperconductingqubits
AT patriciofuentes timevaryingquantumchannelmodelsforsuperconductingqubits
AT pedrocrespo timevaryingquantumchannelmodelsforsuperconductingqubits
AT javiergarciafrias timevaryingquantumchannelmodelsforsuperconductingqubits
_version_ 1721283423894503424