Thermal cycling -- evidence for a generalized tunneling model and a tool to distinguish noise sources in quantum circuits

Fuente: arXiv
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Main Authors: Reiss, Yigal, Schechter, Moshe
Format: Preprint
Published: 2024
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author Reiss, Yigal
Schechter, Moshe
author_facet Reiss, Yigal
Schechter, Moshe
contents Structural two level systems (TLSs) ubiquitous in amorphous solids are dramatically sensitive to thermal cycling to about $20$K and then back to low temperature, a process upon which the excitation energy of most TLSs is significantly changed. Using Monte Carlo simulations we demonstrate that this phenomenon is not contained within the standard tunneling model, but is well explained by a model that includes an additional set of TLSs that are pseudo-gapped at low energies, yet possess strong strain interaction through which they generate significant dynamical disorder upon thermal cycling. Our results provide additional support for the broad applicability of the Two-TLS model to amorphous solids at low temperatures, bringing us closer to a comprehensive understanding of the universal behavior of phonon attenuation in these materials. With regard to quantum superconducting circuits, our results suggest thermal cycling as a unique protocol to distinguish TLS noise from other noise sources. Possible relation of the Two-TLS model to ionizing radiation effects on long-time fluctuations in qubit relaxation times and on TLS scrambling is discussed.
format Preprint
id arxiv_https___arxiv_org_abs_2410_19930
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Thermal cycling -- evidence for a generalized tunneling model and a tool to distinguish noise sources in quantum circuits
Reiss, Yigal
Schechter, Moshe
Disordered Systems and Neural Networks
Quantum Physics
Structural two level systems (TLSs) ubiquitous in amorphous solids are dramatically sensitive to thermal cycling to about $20$K and then back to low temperature, a process upon which the excitation energy of most TLSs is significantly changed. Using Monte Carlo simulations we demonstrate that this phenomenon is not contained within the standard tunneling model, but is well explained by a model that includes an additional set of TLSs that are pseudo-gapped at low energies, yet possess strong strain interaction through which they generate significant dynamical disorder upon thermal cycling. Our results provide additional support for the broad applicability of the Two-TLS model to amorphous solids at low temperatures, bringing us closer to a comprehensive understanding of the universal behavior of phonon attenuation in these materials. With regard to quantum superconducting circuits, our results suggest thermal cycling as a unique protocol to distinguish TLS noise from other noise sources. Possible relation of the Two-TLS model to ionizing radiation effects on long-time fluctuations in qubit relaxation times and on TLS scrambling is discussed.
title Thermal cycling -- evidence for a generalized tunneling model and a tool to distinguish noise sources in quantum circuits
topic Disordered Systems and Neural Networks
Quantum Physics
url https://arxiv.org/abs/2410.19930