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Cooperative effects between color centers in diamond: applications to optical tweezers and optomechanics

机译:钻石色心之间的协同效应:在光镊和光力学中的应用

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Since the early work by Ashkm in 1970, optical trapping has become one of the most powerful tools for manipulating small particles, such as micron sized beads or single atoms. Interestingly, both an atom and a lump of dielectric material can be manipulated through the same mechanism: the interaction energy of a dipole and the electric field of the laser light. In the case of atom trapping, the dominant contribution typically comes from the allowed optical transition closest to the laser wavelength while it is given by the bulk polarisability for mesoscopic particles. This difference lead to two very different contexts of applications: one being the trapping of small objects mainly in biological settings, the other one being dipole traps for individual neutral atoms in the field of quantum optics. In this context, solid state artificial atoms present the interesting opportunity to combine these two aspects of optical manipulation. We are particularly interested in rianodiamonds as they constitute a bulk dielectric object by themselves, but also contain artificial atoms such as nitrogen-vacancy (NV) or silicon-vacancy (SiV) colour centers. With this system, both regimes of optical trapping can be observed at the same time even at room temperature. In this work, we demonstrate that the resonant force from the optical transition of NV centres at 637 nm can be measured in a nanodiamond trapped in water. This additional contribution to the total force is significant, reaching up to 10%. In addition, due to the very large density of NV centres in a sub-wavelength crystal, collective effects between centres have an important effect on the magnitude of the resonant force. The possibility to observe such cooperatively enhanced optical force at room temperature is also theoretically confirmed. This approach may enable the study of cooperativity in various nanoscale solid-state systems and the use of atomic physics techniques in the field of nano-manipulation and opto-mechanics.
机译:自1970年Ashkm的早期工作以来,光学陷阱已成为处理小颗粒(如微米级珠或单个原子)的最强大工具之一。有趣的是,可以通过相同的机制来操纵原子和整体的介电材料:偶极子的相互作用能和激光的电场。在原子俘获的情况下,主要的贡献通常来自最接近激光波长的允许的光跃迁,而这由介观粒子的整体极化率给出。这种差异导致两种非常不同的应用环境:一种是主要在生物环境中捕集小物体,另一种是量子光学领域中单个中性原子的偶极阱。在这种情况下,固态人造原子提供了将光学操纵的这两个方面结合起来的有趣机会。我们对菱形金刚石特别感兴趣,因为它们本身构成块状介电体,但还包含人造原子,例如氮空位(NV)或硅空位(SiV)色心。使用该系统,即使在室温下,也可以同时观察到两种光学捕获方式。在这项工作中,我们证明了可以在水中捕获的纳米金刚石中测量来自NV中心在637 nm处光学跃迁的共振力。这种对总力量的额外贡献是巨大的,高达10%。另外,由于亚波长晶体中NV中心的密度非常大,中心之间的集体效应对共振力的大小具有重要影响。从理论上也证实了观察到这种协同增强的光学力的可能性。这种方法可以研究各种纳米级固态系统中的协同性,并可以在纳米操纵和光机械领域中使用原子物理学技术。

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  • 来源
    《Optical trapping and optical micromanipulation XIV》|2017年|1034711.1-1034711.5|共5页
  • 会议地点 San Diego CA(US)
  • 作者单位

    Department of Physics Astronomy, Macquarie University, New South Wales 2109, Australia,ARC Centre of Excellence for Engineered Quantum Systems, Macquarie University, New South Wales 2109, Australia;

    Institute for Theoretical Physics, University of Innsbruck, A-6020 Innsbruck, Austria,Institute for Quantum Optics and Quantum Information of the Austrian Academy of Sciences, A-6020 Innsbruck, Austria;

    Department of Physics Astronomy, Macquarie University, New South Wales 2109, Australia,ARC Centre of Excellence for Engineered Quantum Systems, Macquarie University, New South Wales 2109, Australia;

    Department of Physics Astronomy, Macquarie University, New South Wales 2109, Australia,ARC Centre of Excellence for Engineered Quantum Systems, Macquarie University, New South Wales 2109, Australia;

    Department of Physics Astronomy, Macquarie University, New South Wales 2109, Australia,ARC Centre of Excellence for Engineered Quantum Systems, Macquarie University, New South Wales 2109, Australia;

    Department of Physics Astronomy, Macquarie University, New South Wales 2109, Australia,ARC Centre of Excellence for Engineered Quantum Systems, Macquarie University, New South Wales 2109, Australia;

    Department of Physics Astronomy, Macquarie University, New South Wales 2109, Australia,ARC Centre of Excellence for Engineered Quantum Systems, Macquarie University, New South Wales 2109, Australia;

    Institute for Theoretical Physics, University of Innsbruck, A-6020 Innsbruck, Austria,Institute for Experimental Physics, University of Innsbruck, A-6020 Innsbruck, Austria;

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

    Optomechanics; cooperativity; colour centers; optical force; near-field levitation;

    机译:光力学合作性颜色中心;视力近场悬浮;

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