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Autori principali: Hou, Pan-Yu, Wu, Jenny J., Erickson, Stephen D., Cole, Daniel C., Zarantonello, Giorgio, Brandt, Adam D., Geller, Shawn, Kwiatkowski, Alex, Glancy, Scott, Knill, Emanuel, Wilson, Andrew C., Slichter, Daniel H., Leibfried, Dietrich
Natura: Preprint
Pubblicazione: 2022
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Accesso online:https://arxiv.org/abs/2205.14841
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author Hou, Pan-Yu
Wu, Jenny J.
Erickson, Stephen D.
Cole, Daniel C.
Zarantonello, Giorgio
Brandt, Adam D.
Geller, Shawn
Kwiatkowski, Alex
Glancy, Scott
Knill, Emanuel
Wilson, Andrew C.
Slichter, Daniel H.
Leibfried, Dietrich
author_facet Hou, Pan-Yu
Wu, Jenny J.
Erickson, Stephen D.
Cole, Daniel C.
Zarantonello, Giorgio
Brandt, Adam D.
Geller, Shawn
Kwiatkowski, Alex
Glancy, Scott
Knill, Emanuel
Wilson, Andrew C.
Slichter, Daniel H.
Leibfried, Dietrich
contents Precise quantum control and measurement of several harmonic oscillators, such as the modes of the electromagnetic field in a cavity or of mechanical motion, are key for their use as quantum platforms. The motional modes of trapped ions can be individually controlled and have good coherence properties. However, achieving high-fidelity two-mode operations and nondestructive measurements of the motional state has been challenging. Here we demonstrate the coherent exchange of single motional quanta between spectrally separated harmonic motional modes of a trapped-ion crystal. The timing, strength, and phase of the coupling are controlled through an oscillating electric potential with suitable spatial variation. Coupling rates that are much larger than decoherence rates enable demonstrations of high fidelity quantum state transfer and beamsplitter operations, entanglement of motional modes, and Hong-Ou-Mandel-type interference. Additionally, we use the motional coupling to enable repeated non-destructive projective measurement of a trapped-ion motional state. Our work enhances the suitability of trapped-ion motion for continuous-variable quantum computing and error correction and may provide opportunities to improve the performance of motional cooling and motion-mediated entangling interactions.
format Preprint
id arxiv_https___arxiv_org_abs_2205_14841
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Coherent coupling and non-destructive measurement of trapped-ion mechanical oscillators
Hou, Pan-Yu
Wu, Jenny J.
Erickson, Stephen D.
Cole, Daniel C.
Zarantonello, Giorgio
Brandt, Adam D.
Geller, Shawn
Kwiatkowski, Alex
Glancy, Scott
Knill, Emanuel
Wilson, Andrew C.
Slichter, Daniel H.
Leibfried, Dietrich
Quantum Physics
Precise quantum control and measurement of several harmonic oscillators, such as the modes of the electromagnetic field in a cavity or of mechanical motion, are key for their use as quantum platforms. The motional modes of trapped ions can be individually controlled and have good coherence properties. However, achieving high-fidelity two-mode operations and nondestructive measurements of the motional state has been challenging. Here we demonstrate the coherent exchange of single motional quanta between spectrally separated harmonic motional modes of a trapped-ion crystal. The timing, strength, and phase of the coupling are controlled through an oscillating electric potential with suitable spatial variation. Coupling rates that are much larger than decoherence rates enable demonstrations of high fidelity quantum state transfer and beamsplitter operations, entanglement of motional modes, and Hong-Ou-Mandel-type interference. Additionally, we use the motional coupling to enable repeated non-destructive projective measurement of a trapped-ion motional state. Our work enhances the suitability of trapped-ion motion for continuous-variable quantum computing and error correction and may provide opportunities to improve the performance of motional cooling and motion-mediated entangling interactions.
title Coherent coupling and non-destructive measurement of trapped-ion mechanical oscillators
topic Quantum Physics
url https://arxiv.org/abs/2205.14841