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Quantum information at the interface of light with atomic ensembles and micromechanical oscillators

机译:光与原子团簇和微机械振荡器的界面处的量子信息

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摘要

This article reviews recent research towards a universal light-matter interface. Such an interface is an important prerequisite for long distance quantum communication, entanglement assisted sensing and measurement, as well as for scalable photonic quantum computation. We review the developments in light-matter interfaces based on room temperature atomic vapors interacting with propagating pulses via the Faraday effect. This interaction has long been used as a tool for quantum nondemolition detections of atomic spins via light. It was discovered recently that this type of light-matter interaction can actually be tuned to realize more general dynamics, enabling better performance of the light-matter interface as well as rendering tasks possible, which were before thought to be impractical. This includes the realization of improved entanglement assisted and backaction evading magnetometry approaching the Quantum Cramer-Rao limit, quantum memory for squeezed states of light and the dissipative generation of entanglement. A separate, but related, experiment on entanglement assisted cold atom clock showing the Heisenberg scaling of precision is described. We also review a possible interface between collective atomic spins with nano- or micromechanical oscillators, providing a link between atomic and solid state physics approaches towards quantum information processing.
机译:本文回顾了对通用光物质界面的最新研究。这种接口是长距离量子通信,纠缠辅助传感和测量以及可伸缩光子量子计算的重要先决条件。我们回顾了基于室温原子蒸气通过法拉第效应与传播脉冲相互作用的光物质界面的发展。长期以来,这种相互作用一直被用作通过光对原子自旋进行量子非爆破检测的工具。最近发现,实际上可以调整这种类型的光-质相互作用,以实现更一般的动力学,从而实现光-质界面的更好性能以及使渲染任务成为可能,这在以前是不切实际的。这包括实现接近量子Cramer-Rao极限的改进的纠缠辅助和回避逃逸磁力计,用于压缩光态的量子存储以及耗散的纠缠生成。描述了一个单独的但相关的纠缠辅助冷原子钟实验,该实验显示了Heisenberg精度标度。我们还回顾了集体原子自旋与纳米或微机械振荡器之间的可能接口,为原子和固态物理学方法之间的量子信息处理提供了联系。

著录项

  • 来源
    《Quantum Information Processing》 |2011年第6期|p.839-863|共25页
  • 作者单位

    Max-Planck–Institut für Quantenoptik, Hans-Kopfermann-Strasse, 85748, Garching, Germany;

    Niels Bohr Institute, Danish Quantum Optics Center QUANTOP, Copenhagen University, Blegdamsvej 17, 2100, Copenhagen, Denmark;

    Institute for Theoretical Physics, Institute for Gravitational Physics, Leibniz University Hanover, Callinstrasse 38, 30167, Hanover, Germany;

    Niels Bohr Institute, Danish Quantum Optics Center QUANTOP, Copenhagen University, Blegdamsvej 17, 2100, Copenhagen, Denmark;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Light matter interface; Atomic ensembles; Optomechanics;

    机译:光物质界面;原子团;光力学;

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