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Three-dimensional imaging of cavity vacuum with single atoms localized by a nanohole array

机译:纳米孔阵列定位的单原子腔真空的三维成像

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Zero-point electromagnetic fields were first introduced to explain the origin of atomic spontaneous emission. Vacuum fluctuations associated with the zero-point energy in cavities are now utilized in quantum devices such as single-photon sources, quantum memories, switches and network nodes. Here we present three-dimensional (3D) imaging of vacuum fluctuations in a high-Q cavity based on the measurement of position-dependent emission of single atoms. Atomic position localization is achieved by using a nanoscale atomic beam aperture scannable in front of the cavity mode. The 3D structure of the cavity vacuum is reconstructed from the cavity output. The root mean squared amplitude of the vacuum field at the antinode is also measured to be 0.92 +/- 0.07 V cm(-1). The present work utilizing a single atom as a probe for sub-wavelength imaging demonstrates the utility of nanometre-scale technology in cavity quantum electrodynamics.
机译:首先引入零点电磁场来解释原子自发发射的起源。与腔中零点能量相关的真空波动现在被用于量子设备中,例如单光子源,量子存储器,开关和网络节点。在这里,我们基于对单个原子的位置相关发射的测量,介绍了高Q腔中真空波动的三维(3D)成像。通过使用可在腔模前面扫描的纳米级原子束孔径来实现原子位置定位。腔真空的3D结构是从腔输出中重建的。在波腹处真空场的均方根振幅也被测量为0.92 +/- 0.07 V cm(-1)。利用单个原子作为探针进行亚波长成像的当前工作证明了纳米级技术在腔体量子电动力学中的实用性。

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