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在纳米机电系统中检测量子位-振荡器纠缠。

Detection of qubit-oscillator entanglement in nanoelectromechanical systems.

机构信息

Department of Physics, Yale University, 217 Prospect Street, New Haven, Connecticut 06520, USA.

出版信息

Phys Rev Lett. 2010 Apr 30;104(17):177205. doi: 10.1103/PhysRevLett.104.177205. Epub 2010 Apr 29.

Abstract

Experiments over the past years have demonstrated that it is possible to bring nanomechanical resonators and superconducting qubits close to the quantum regime and to measure their properties with an accuracy close to the Heisenberg uncertainty limit. Therefore, it is just a question of time before we will routinely see true quantum effects in nanomechanical systems. One of the hallmarks of quantum mechanics is the existence of entangled states. We propose a realistic scenario making it possible to detect entanglement of a mechanical resonator and a qubit in a nanoelectromechanical setup. The detection scheme involves only standard current and noise measurements of an atomic point contact coupled to an oscillator and a qubit. This setup could allow for the first observation of entanglement between a continuous and a discrete quantum system in the solid state.

摘要

在过去的几年中,实验已经证明,使纳米机械谐振器和超导量子比特接近量子态并以接近海森堡不确定性极限的精度测量它们的性质是可能的。因此,在我们常规地看到纳米机械系统中的真正量子效应之前,这只是一个时间问题。量子力学的一个特点是存在纠缠态。我们提出了一个现实的方案,使得在纳米机电装置中检测机械谐振器和量子比特的纠缠成为可能。检测方案仅涉及与振荡器和量子比特耦合的原子点接触的标准电流和噪声测量。这种设置可以首次观察到固态中连续和离散量子系统之间的纠缠。

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