ICFO - Institut de Ciencies Fotoniques, Mediterranean Technology Park, 08860 Castelldefels (Barcelona), Spain.
Nat Nanotechnol. 2013 Mar;8(3):175-9. doi: 10.1038/nnano.2012.259. Epub 2013 Feb 10.
Nitrogen vacancy (NV) centres in diamond are promising elemental blocks for quantum optics, spin-based quantum information processing and high-resolution sensing. However, fully exploiting the capabilities of these NV centres requires suitable strategies to accurately manipulate them. Here, we use optical tweezers as a tool to achieve deterministic trapping and three-dimensional spatial manipulation of individual nanodiamonds hosting a single NV spin. Remarkably, we find that the NV axis is nearly fixed inside the trap and can be controlled in situ by adjusting the polarization of the trapping light. By combining this unique spatial and angular control with coherent manipulation of the NV spin and fluorescence lifetime measurements near an integrated photonic system, we demonstrate individual optically trapped NV centres as a novel route for both three-dimensional vectorial magnetometry and sensing of the local density of optical states.
钻石中的氮空位(NV)中心是量子光学、基于自旋的量子信息处理和高分辨率传感的有前途的基本单元。然而,要充分利用这些 NV 中心的能力,需要有合适的策略来准确地对其进行操控。在这里,我们使用光学镊子作为一种工具,实现了对单个 NV 自旋所在的单个纳米金刚石的确定性捕获和三维空间操控。值得注意的是,我们发现 NV 轴在陷阱内几乎固定,并且可以通过调整捕获光的偏振来进行原位控制。通过将这种独特的空间和角度控制与 NV 自旋的相干操控以及集成光子系统附近的荧光寿命测量相结合,我们展示了单个光学捕获的 NV 中心作为三维矢量磁力计和局部光态密度传感的新途径。