Quantum jumps of sound

Quantum mechanics predicts that a vibrating object's energy comes in discrete packets, yet no measurement of its position reveals this discreteness. Resolving individual energy levels requires a qualitatively different measurement, one coupling to the resonator's energy rather than its displacement. We use a superconducting qubit dispersively coupled to a nanomechanical resonator to perform repeated quantum nondemolition measurements of the phonon number. An aligned transfer-print technique integrating the qubit and resonator yields a mechanical lifetime of [Formula: see text] milliseconds and a dispersive shift of [Formula: see text] kilohertz per phonon. We heralded single-phonon states with 85% fidelity and observed quantum jumps between the resonator's first excited state and ground state. These discontinuous transitions are a striking manifestation of quantum mechanics in a massive, vibrating object.

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Publication Details

Journal
Science
Published
2026-09-17
DOI
https://doi.org/10.1126/science.aeh7535
Primary Topic
Mechanical and Optical Resonators
Type
article
Field-Weighted Citation Impact
0.00

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article

Quantum jumps of sound

M. P. Maksymowych, Kaveh Pezeshki, Amir H. Safavi‐Naeini, Takuma Makihara et al.
Science
Mechanical and Optical Resonators
article

Quantum jumps of sound

M. P. Maksymowych, Kaveh Pezeshki, Amir H. Safavi‐Naeini, Takuma Makihara, Shannon P. Harvey, David Schuster, Mihir Pendharkar, Oliver A. Hitchcock, Erik Szakiel, Rachel G. Gruenke-Freudenstein
article en

Abstract

Quantum mechanics predicts that a vibrating object's energy comes in discrete packets, yet no measurement of its position reveals this discreteness. Resolving individual energy levels requires a qualitatively different measurement, one coupling to the resonator's energy rather than its displacement. We use a superconducting qubit dispersively coupled to a nanomechanical resonator to perform repeated quantum nondemolition measurements of the phonon number. An aligned transfer-print technique integrating the qubit and resonator yields a mechanical lifetime of [Formula: see text] milliseconds and a dispersive shift of [Formula: see text] kilohertz per phonon. We heralded single-phonon states with 85% fidelity and observed quantum jumps between the resonator's first excited state and ground state. These discontinuous transitions are a striking manifestation of quantum mechanics in a massive, vibrating object.

ScienceVol. 393(6817)
SLAC National Accelerator Laboratory (US), Stanford University (US)
U.S. Department of Defense, Natural Sciences and Engineering Research Council of Canada, Office of Naval Research, Air Force Office of Scientific Research
Affordable and clean energy
Openalex Percentile: Top 13%
Mechanical and Optical Resonators
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Quantum jumps of sound — M. P. Maksymowych, Kaveh Pezeshki, et al. · Science (2026) | TGRS Research Map | TGRS