物理
量子位元
量子力学
激发态
谐振器
量子
联轴节(管道)
基态
声子
磁通量子比特
电荷量子位
相位量子位
量子态
能量(信号处理)
职位(财务)
量子耗散
超导电性
第二声
量子电动力学
量子动力学
经典力学
量子系统
噪音(视频)
开放量子系统
能量流
作者
Takuma Makihara,Erik Szakiel,M. P. Maksymowych,Oliver A. Hitchcock,Kaveh Pezeshki,Rachel G. Gruenke-Freudenstein,Mihir Pendharkar,Shannon P. Harvey,David Schuster,Amir H. Safavi‐Naeini
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-09-17
卷期号:393 (6817): 1217-1220
标识
DOI:10.1126/science.aeh7535
摘要
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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