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通过将振动纳米线和冷原子相连接实现量子电流计。

Quantum galvanometer by interfacing a vibrating nanowire and cold atoms.

机构信息

Research Institute for Solid State Physics and Optics of the Hungarian Academy of Sciences, H-1525 Budapest P.O. Box 49, Hungary.

出版信息

Nano Lett. 2012 Jan 11;12(1):435-9. doi: 10.1021/nl203762g. Epub 2011 Dec 6.

Abstract

We evaluate the coupling of a Bose-Einstein condensate (BEC) of ultracold, paramagnetic atoms to the magnetic field of the current in a mechanically vibrating carbon nanotube within the frame of a full quantum theory. We find that the interaction is strong enough to sense quantum features of the nanowire current noise spectrum by means of hyperfine-state-selective atom counting. Such a nondestructive measurement of the electric current via its magnetic field corresponds to the classical galvanometer scheme, extended to the quantum regime of charge transport. The calculated high sensitivity of the interaction in the nanowire-BEC hybrid systems opens up the possibility of quantum control, which may be further extended to include other relevant degrees of freedom.

摘要

我们在一个完整的量子理论框架内评估了超冷顺磁性原子的玻色-爱因斯坦凝聚体(BEC)与机械振动碳纳米管中电流磁场的耦合。我们发现,通过超精细态选择性原子计数,可以感受到纳米线电流噪声谱的量子特征,这种相互作用足够强。通过磁场对电流进行非破坏性测量,对应于经典的检流计方案,扩展到电荷传输的量子领域。在纳米线-BEC 混合系统中,相互作用的高灵敏度为量子控制提供了可能性,这可能进一步扩展到包括其他相关自由度。

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