2015
DOI: 10.1103/physrevx.5.031031
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Universal Quantum Transducers Based on Surface Acoustic Waves

Abstract: We propose a universal, on-chip quantum transducer based on surface acoustic waves in piezoactive materials. Because of the intrinsic piezoelectric (and/or magnetostrictive) properties of the material, our approach provides a universal platform capable of coherently linking a broad array of qubits, including quantum dots, trapped ions, nitrogen-vacancy centers, or superconducting qubits. The quantized modes of surface acoustic waves lie in the gigahertz range and can be strongly confined close to the surface i… Show more

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Cited by 205 publications
(196 citation statements)
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References 93 publications
(249 reference statements)
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“…Work is in progress to explore spin responses to uniaxial strains, which may be useful in applications ranging from nano-scale sensing 71 to creation of hybrid quantum systems [30][31][32] . 73 .…”
Section: Discussionmentioning
confidence: 99%
“…Work is in progress to explore spin responses to uniaxial strains, which may be useful in applications ranging from nano-scale sensing 71 to creation of hybrid quantum systems [30][31][32] . 73 .…”
Section: Discussionmentioning
confidence: 99%
“…The extensive technologies developed for micro-electromechanical systems (MEMS) can also be adapted for quantum acoustics. Potential applications in quantum information processing, such as phononic cavity QED, mechanically mediated spin entanglement, spin squeezing, and SAW-based universal quantum transducers interfacing a broad array of qubits, have been proposed recently [2][3][4][5][6]. Applications for phonon cooling and lasing have also been considered theoretically [7,8].…”
Section: Introductionmentioning
confidence: 99%
“…we may be able to use mechanical systems as powerful resources for quantum information and metrology, such as universal transducers or quantum memories that are more compact than their electromagnetic counterparts 8,9,17,18 . In addition, since any coupling of qubits to other degrees of freedom can lead to decoherence, it is crucial to understand and control the interaction qubits might have to their mechanical environments 19 .…”
mentioning
confidence: 99%