论文标题

光子晶阵阵列的光子晶体波导在光学镊子中的整合

The integration of photonic crystal waveguides with atom arrays in optical tweezers

论文作者

Luan, X., Béguin, J. -B., Burgers, A. P., Qin, Z., Yu, S. -P., Kimble, H. J.

论文摘要

由于量子信息科学中的多种应用和量子多体物理学的探索,近年来纳米原子和冷原子的整合引起了人们的兴趣。例如,分散工程的光子晶体波导(PCWS)不仅允许通过与引导模式光的相互作用进行稳定的捕获和探测超速中性原子的稳定捕获和探测,而且还允许探索原子之间的强,光子介导的相互作用的物理学,以及原子介导的光子之间的相互作用。尽管已经分析了涉及1-D和2-D纳米光子晶格中原子和光子的多种理论机会,但巨大的挑战仍然是PCW与Ultracold Atoms的实验整合。在这里,我们描述了一种先进的设备,该设备克服了当前实验进度的几个重大障碍,目的是通过在1-D和2-D PCW中强烈耦合到光子的单原子镊子阵列来实现光和物质的强量子相互作用。主要的技术进步涉及在PCW的指导模式下的有效自由空间耦合,小玻璃真空电池中的硅芯片的硅酸盐键合以及确定性的,机械的,将单元镊子阵列机械递送到光子晶体晶体晶体的近场。

Integrating nanophotonics and cold atoms has drawn increasing interest in recent years due to diverse applications in quantum information science and the exploration of quantum many-body physics. For example, dispersion-engineered photonic crystal waveguides (PCWs) permit not only stable trapping and probing of ultracold neutral atoms via interactions with guided-mode light, but also the possibility to explore the physics of strong, photon-mediated interactions between atoms, as well as atom-mediated interactions between photons. While diverse theoretical opportunities involving atoms and photons in 1-D and 2-D nanophotonic lattices have been analyzed, a grand challenge remains the experimental integration of PCWs with ultracold atoms. Here we describe an advanced apparatus that overcomes several significant barriers to current experimental progress with the goal of achieving strong quantum interactions of light and matter by way of single-atom tweezer arrays strongly coupled to photons in 1-D and 2-D PCWs. Principal technical advances relate to efficient free-space coupling of light to and from guided modes of PCWs, silicate bonding of silicon chips within small glass vacuum cells, and deterministic, mechanical delivery of single-atom tweezer arrays to the near fields of photonic crystal waveguides.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源