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Coupling a Superconducting Quantum Circuit to a Phononic Crystal Defect Cavity
by
Wollack, E. Alex
, Hill, Jeff T.
, Safavi-Naeini, Amir H.
, Arrangoiz-Arriola, Patricio
, Witmer, Jeremy D.
, Pechal, Marek
in
Acoustic coupling
/ Acoustic resonance
/ Acoustic waves
/ Acoustics
/ Cavity resonators
/ Circuits
/ Converters
/ Coupling
/ Crystal defects
/ Data processing
/ Electric fields
/ Electrical junctions
/ High impedance
/ Hybrid systems
/ Josephson junctions
/ Lithium
/ Microwave resonance
/ Optical materials
/ Phonons
/ Photons
/ Piezoelectricity
/ Radio signals
/ Signal processing
/ Sound waves
/ Superconductivity
/ Thin films
2018
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Coupling a Superconducting Quantum Circuit to a Phononic Crystal Defect Cavity
by
Wollack, E. Alex
, Hill, Jeff T.
, Safavi-Naeini, Amir H.
, Arrangoiz-Arriola, Patricio
, Witmer, Jeremy D.
, Pechal, Marek
in
Acoustic coupling
/ Acoustic resonance
/ Acoustic waves
/ Acoustics
/ Cavity resonators
/ Circuits
/ Converters
/ Coupling
/ Crystal defects
/ Data processing
/ Electric fields
/ Electrical junctions
/ High impedance
/ Hybrid systems
/ Josephson junctions
/ Lithium
/ Microwave resonance
/ Optical materials
/ Phonons
/ Photons
/ Piezoelectricity
/ Radio signals
/ Signal processing
/ Sound waves
/ Superconductivity
/ Thin films
2018
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Coupling a Superconducting Quantum Circuit to a Phononic Crystal Defect Cavity
by
Wollack, E. Alex
, Hill, Jeff T.
, Safavi-Naeini, Amir H.
, Arrangoiz-Arriola, Patricio
, Witmer, Jeremy D.
, Pechal, Marek
in
Acoustic coupling
/ Acoustic resonance
/ Acoustic waves
/ Acoustics
/ Cavity resonators
/ Circuits
/ Converters
/ Coupling
/ Crystal defects
/ Data processing
/ Electric fields
/ Electrical junctions
/ High impedance
/ Hybrid systems
/ Josephson junctions
/ Lithium
/ Microwave resonance
/ Optical materials
/ Phonons
/ Photons
/ Piezoelectricity
/ Radio signals
/ Signal processing
/ Sound waves
/ Superconductivity
/ Thin films
2018
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Coupling a Superconducting Quantum Circuit to a Phononic Crystal Defect Cavity
Journal Article
Coupling a Superconducting Quantum Circuit to a Phononic Crystal Defect Cavity
2018
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Overview
Connecting nanoscale mechanical resonators to microwave quantum circuits opens new avenues for storing, processing, and transmitting quantum information. In this work, we couple a phononic crystal cavity to a tunable superconducting quantum circuit. By fabricating a one-dimensional periodic pattern in a thin film of lithium niobate and introducing a defect in this artificial lattice, we localize a 6-GHz acoustic resonance to a wavelength-scale volume of less than 1 cubic micron. The strong piezoelectricity of lithium niobate efficiently couples the localized vibrations to the electric field of a widely tunable high-impedance Josephson junction array resonator. We measure a direct phonon-photon coupling rateg/2π≈1.6MHzand a mechanical quality factorQm≈3×104, leading to a cooperativityC∼4when the two modes are tuned into resonance. Our work has direct application to engineering hybrid quantum systems for microwave-to-optical conversion as well as emerging architectures for quantum information processing.
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