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Quantum Measurements of Microwave-Frequency Acoustic Resonators with Superconducting Circuits
by
Chou, Ming-Han
in
Condensed matter physics
/ Physics
/ Quantum physics
2023
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Quantum Measurements of Microwave-Frequency Acoustic Resonators with Superconducting Circuits
by
Chou, Ming-Han
in
Condensed matter physics
/ Physics
/ Quantum physics
2023
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Quantum Measurements of Microwave-Frequency Acoustic Resonators with Superconducting Circuits
Dissertation
Quantum Measurements of Microwave-Frequency Acoustic Resonators with Superconducting Circuits
2023
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Overview
Phonon modes at microwave frequencies can be cooled to their quantum ground state using conventional cryogenic refrigeration, providing a convenient way to study and manipulate quantum states at the single phonon level. Phonons are of particular interest because mechanical deformations can mediate interactions with a wide range of different quantum systems, including solid-state defects, superconducting qubits, and optical photons when using optomechanically active constructs. Phonons, thus, hold promise for quantum-focused applications as diverse as sensing, information processing, and communication. In this thesis, we describe a piezoelectric quantum bulk acoustic resonator with a 4.88 GHz resonant frequency, which, at cryogenic temperatures, displays large electromechanical coupling strength combined with a high intrinsic mechanical quality factor Qi ∼ 4.3 * 104. Using a recently developed flip-chip technique, we couple this resonator to a superconducting qubit on a separate die and demonstrate the quantum control of the mechanics in the coupled system. The resonator lifetime at a single phonon level is measured, which yields a Qi ∼ 5.43 * 103. This lower quality factor at a single phonon level is likely due to the two-level system (TLS) defects contamination in the device. To test whether this dissipation comes from the TLS defects, a hole-burning technique is implemented to saturate those defects. As a result, the resonator quality factor is enhanced back to Qi ∼ 3 * 104, which demonstrates that TLS defects contribute the dissipation significantly in our device.
Publisher
ProQuest Dissertations & Theses
Subject
ISBN
9798377640387
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