Superconducting qubits capable of dynamic switching between protected and high-speed control regimes (Record no. 768068)

MARC details
000 -LEADER
fixed length control field 04330ntm a22003257a 4500
003 - CONTROL NUMBER IDENTIFIER
control field AT-ISTA
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20251015130432.0
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 250915s2024 au ||||| m||| 00| 0 eng d
040 ## - CATALOGING SOURCE
Transcribing agency ISTA
100 ## - MAIN ENTRY--PERSONAL NAME
Personal name Hassani, Bijarbooneh Farid
9 (RLIN) 1084274
245 ## - TITLE STATEMENT
Title Superconducting qubits capable of dynamic switching between protected and high-speed control regimes
260 ## - PUBLICATION, DISTRIBUTION, ETC. (IMPRINT)
Name of publisher, distributor, etc. Institute of Science and Technology Austria
Date of publication, distribution, etc. 2024
500 ## - GENERAL NOTE
General note Thesis
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Formatted contents note Abstract
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Formatted contents note Acknowledgements
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Formatted contents note About the Author
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Formatted contents note List of Collaborators and Publications
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Formatted contents note Table of Contents
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Formatted contents note List of Figures
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Formatted contents note List of Tables
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Formatted contents note 1 Introduction
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Formatted contents note 2 The Transmon Qubit, Experimental Setup and the Fabrication Process
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Formatted contents note 3 Geometric Superinductor and rf-SQUID Qubits
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Formatted contents note 4 The Inductively Shunted Transmon Qubit
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Formatted contents note 5 A 0-π Qubit with In-Situ Tuning of Controllability and Protection
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Formatted contents note Bibliography
520 ## - SUMMARY, ETC.
Summary, etc. An ideal quantum computer relies on qubits capable of performing fast gate operations and maintaining strong interconnections while preserving their quantum coherence. Since the inception of experimental eforts toward building a quantum computer, the community has faced challenges in engineering such a system. Among the various methods of implementing a quantum computer, superconducting qubits have shown fast gates close to tens of nanoseconds, with the state-of-the-art reaching a coherence of a few milliseconds. However, achieving simultaneously long lifetimes with fast qubit operations poses an inherent paradox. Qubits with high coherence require isolation from the environment, while fast operation necessitates strong coupling of the qubit. This thesis approaches this issue by proposing the idea of engineering superconducting qubits capable of transitioning between operating in a protected regime, where the qubit is completely isolated from the environment, and coupling to the communication channels as needed. In this direction, we use the geometric superinductor to scan the parameter space of rf-SQUID devices, searching for a regime where we can take the qubit protection to its extreme. This leads us to the inductively shunted transmon (IST) regime, characterized by EJ /EC ≫ 1 and EJ /EL ≫ 1, where the circuit potential exhibits a double well with a large barrier separating the local ground states of each quantum well. In this regime, although it is anticipated that the two quantum wells would be isolated from each other, we observe single fuxon tunneling between them. The interplay of the cavity photons and the fuxon transition forms a rich physical system, containing resonance conditions that allow the preparation of the fuxon ground or excited states. This enables us to study the relaxation rate of such transition and show that it can be as large as 3.6 hours. Dynamically controlling the barrier height between the two quantum wells allows for controllable coupling, which scales exponentially, for a qubit encoded in two fuxon states. The 0-π qubit is one of the very few known superconducting circuit types that ofers exponential protection from both relaxation and dephasing simultaneously. However, this qubit is not exempt from the fact that such protection comes at the expense of complex readout and control. In this thesis, we propose a way to controllably break the circuit symmetry, the key reason for the protection, to momentarily restore the ability to control and manipulate the qubit. An asymmetry in capacitances and inductances in the 0-π circuit is detrimental since they lead to coupling of the protected state to the thermally occupied parasitic mode of the circuit. However, here we try to exploit a controlled asymmetry in Josephson energies and show that this can be used as a tunable coupler between the protected states. In the future, this should allow to perform gate operations by dynamically controlling the asymmetry instead of driving the protected transition with microwave pulses. Therefore, we believe that the proposed method can make the use of protected qubits more practical in experimental realizations of quantum computing.
856 ## - ELECTRONIC LOCATION AND ACCESS
Uniform Resource Identifier <a href="https://doi.org/10.15479/at:ista:17133">https://doi.org/10.15479/at:ista:17133</a>
942 ## - ADDED ENTRY ELEMENTS (KOHA)
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Withdrawn status Lost status Source of classification or shelving scheme Damaged status Not for loan Home library Current library Date acquired Total Checkouts Full call number Barcode Date last seen Price effective from Koha item type
  Not Lost Dewey Decimal Classification     Library Library 15/09/2025   Quiet Room AT-ISTA#003319 16/09/2025 15/09/2025 Book

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