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Cooling a nanomechanical resonator with quantum back-action.

机译:用量子背向作用冷却纳米机械谐振器。

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Quantum mechanics demands that the act of measurement must affect the measured object. When a linear amplifier is used to continuously monitor the position of an object, the Heisenberg uncertainty relationship requires that the object be driven by force impulses, called back-action. Here we measure the back-action of a superconducting single-electron transistor (SSET) on a radio-frequency nanomechanical resonator. The conductance of the SSET, which is capacitively coupled to the resonator, provides a sensitive probe of the latter's position; back-action effects manifest themselves as an effective thermal bath, the properties of which depend sensitively on SSET bias conditions. Surprisingly, when the SSET is biased near a transport resonance, we observe cooling of the nanomechanical mode from 550 mK to 300 mK--an effect that is analogous to laser cooling in atomic physics. Our measurements have implications for nanomechanical readout of quantum information devices and the limits of ultrasensitive force microscopy (such as single-nuclear-spin magnetic resonance force microscopy). Furthermore, we anticipate the use of these back-action effects to prepare ultracold and quantum states of mechanical structures, which would not be accessible with existing technology.
机译:量子力学要求测量行为必须影响被测对象。当使用线性放大器连续监视对象的位置时,海森堡不确定性关系要求对象由受力脉冲驱动,这称为反作用。在这里,我们测量了射频纳米机械谐振器上的超导单电子晶体管(SSET)的反向作用。电容耦合到谐振器的SSET的电导提供了一个敏感的探头位置。逆作用效应表现为一种有效的热浴,其性能敏感地取决于SSET偏置条件。出乎意料的是,当SSET偏向传输共振附近时,我们观察到纳米力学模式从550 mK冷却到300 mK,这一效果类似于原子物理学中的激光冷却。我们的测量对量子信息设备的纳米机械读数和超灵敏力显微镜(例如单核自旋磁共振力显微镜)的局限性有影响。此外,我们预计将利用这些反作用效应来制备机械结构的超冷态和量子态,而现有技术将无法获得这些态势。

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