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机械谐振子在近基态运动时的制备与检测。

Preparation and detection of a mechanical resonator near the ground state of motion.

机构信息

Department of Physics, Cornell University, Ithaca, New York 14853, USA.

出版信息

Nature. 2010 Jan 7;463(7277):72-5. doi: 10.1038/nature08681. Epub 2009 Dec 9.

Abstract

Cold, macroscopic mechanical systems are expected to behave contrary to our usual classical understanding of reality; the most striking and counterintuitive predictions involve the existence of states in which the mechanical system is located in two places simultaneously. Various schemes have been proposed to generate and detect such states, and all require starting from mechanical states that are close to the lowest energy eigenstate, the mechanical ground state. Here we report the cooling of the motion of a radio-frequency nanomechanical resonator by parametric coupling to a driven, microwave-frequency superconducting resonator. Starting from a thermal occupation of 480 quanta, we have observed occupation factors as low as 3.8 +/- 1.3 and expect the mechanical resonator to be found with probability 0.21 in the quantum ground state of motion. Further cooling is limited by random excitation of the microwave resonator and heating of the dissipative mechanical bath. This level of cooling is expected to make possible a series of fundamental quantum mechanical observations including direct measurement of the Heisenberg uncertainty principle and quantum entanglement with qubits.

摘要

低温宏观力学系统的行为预计会与我们通常对现实的经典理解相矛盾;最引人注目的反直觉预测涉及到存在机械系统同时处于两个位置的状态。已经提出了各种方案来产生和检测这些状态,所有这些方案都需要从接近最低能量本征态(机械基态)的机械状态开始。在这里,我们报告了通过参数耦合到驱动的微波频率超导谐振器来冷却射频纳米机械谐振器的运动。从热占据 480 个量子开始,我们已经观察到的占据因子低至 3.8 +/- 1.3,并且预计机械谐振器以 0.21 的概率处于运动的量子基态。进一步的冷却受到微波谐振器的随机激发和耗散机械浴的加热的限制。这种冷却水平有望实现一系列基本的量子力学观测,包括直接测量海森堡不确定性原理和与量子位的量子纠缠。

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