电路腔电力学在强合体制中的电路腔电力学.
J D Teufel1, Dale Li, M S Allman
1National Institute of Standards and Technology, 325 Broadway, Boulder, Colorado 80305, USA. john.teufel@nist.gov
Nature
|March 11, 2011
概括
研究人员通过将一个膜与一个超导空腔相结合,在量子光学学中实现了强的合. 这一突破使量子力学状态的增强控制和测量成为可能.
科学领域:
- 量子物理学和量子力学的量子力学.
- 洞穴光学力学和电力学.
- 宏观的量子现象 宏观的量子现象
背景情况:
- 研究宏观物体的量子性质对于量子测量,信息协议和测试量子连贯性至关重要.
- 长期存在的机械状态对于观察宏观量子行为至关重要.
- 以前的量子行为观测仅限于低质量的因素机械系统.
研究的目的:
- 为了在空腔光学力学中实现强的合,以增强量子控制.
- 探索宏观机械系统中的量子行为.
- 为了实现基态冷却和量子力学状态的连贯控制.
主要方法:
- 将一个独立的,灵活的膜嵌入到一个块状元素超导共振腔中.
- 通过将单光子合强度增加两倍以上来实现强的合.
- 利用参数驱动音调大大增加了量子启用模式中的整体合强度.
主要成果:
- 证明了机械振荡器和腔共振之间的单光子合强度的显著增加.
- 实现了量子启用,强合的模式,由近六个裸腔线宽的最大正常模式分割证明.
- 对"穿着状态"的光谱测量显示与理论预测有很好的一致性.
结论:
- 开发的电路架构为机械运动的基态冷却提供了一个实用的途径.
- 能够连贯控制和测量宏观机械物体的长寿命量子状态.
- 推动了对宏观量子连贯性和量子协议局限性的研究.
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