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Coherent manipulation of cold cesium atoms in a nanofiber-based two-color dipole trap

机译:基于纳米纤维的双色偶极阱中冷铯原子的相干操作

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We have recently demonstrated a new experimental platform for trapping and optically interfacing laser-cooled cesium atoms. The scheme uses a two-color evanescent field surrounding an optical nanofiber to localize the atoms in a one-dimensional optical lattice 200 nm above the nanofiber surface [1]. In order to use this fiber-coupled ensemble of trapped atoms for applications in the context of quantum communication and quantum information processing, non-classical states of the atomic spins have to be prepared and should live long enough to allow one to apply successive quantum gates. The close proximity of the trapped atoms to the nanofiber surface and the strong polarization gradients of nanofiber-guided light fields are potentially important sources of decoherence. Here, we present our latest experimental results on the coherence properties of atomic spins in our nanofiber-based trap. Using a microwave field to drive the clock transition, we determine inhomogeneous and homogeneous dephasing times by Ramsey and spin echo techniques, respectively. Our results constitute the first measurement of the coherence properties of atoms trapped in the vicinity of a nanofiber and represent a fundamental step towards establishing nanofiber-based traps for cold atoms as a building block in a quantum network.
机译:我们最近展示了一个新的实验平台,用于捕获和光学连接激光冷却的铯原子。该方案使用围绕光学纳米纤维的两色e逝场,将原子定位在纳米纤维表面上方200 nm的一维光学晶格中[1]。为了将这种捕获的原子的纤维耦合集合用于量子通信和量子信息处理的环境,必须准备原子自旋的非经典状态,并且其寿命应足够长,以允许人们施加连续的量子门。被捕获的原子与纳米纤维表面的紧密接近以及纳米纤维引导的光场的强偏振梯度是潜在的重要的退相干来源。在这里,我们介绍了有关基于纳米纤维的陷阱中原子自旋相干性的最新实验结果。利用微波场来驱动时钟转换,我们分别通过Ramsey和自旋回波技术确定不均匀和均匀的移相时间。我们的结果构成了对纳米纤维附近捕获的原子相干性的首次测量,并且代表了建立基于纳米纤维的冷原子陷阱的基本步骤,该陷阱是量子网络的基础。

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