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Thompson, Jeffrey Douglas

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Thompson

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Jeffrey Douglas

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Thompson, Jeffrey Douglas

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Now showing 1 - 2 of 2
  • Publication

    Coherence and Raman Sideband Cooling of a Single Atom in an Optical Tweezer

    (American Physical Society, 2013) Thompson, Jeffrey Douglas; Tiecke, Tobias; Zibrov, Alexander; Vuletić, V.; Lukin, Mikhail

    We investigate quantum control of a single atom in a tightly focused optical tweezer trap. We show that inevitable spatially varying polarization gives rise to significant internal-state decoherence but that this effect can be mitigated by an appropriately chosen magnetic bias field. This enables Raman sideband cooling of a single atom close to its three-dimensional ground state (vibrational quantum numbers (\bar n_x=\bar n_y=0.01, \bar n_z=8)) even for a trap beam waist as small as (\omega=900  nm). The small atomic wave packet with (\delta x=\delta y=24  nm) and (\delta z=270  nm) represents a promising starting point for future hybrid quantum systems where atoms are placed in close proximity to surfaces.

  • Publication

    Nanophotonic quantum phase switch with a single atom

    (Nature Publishing Group, 2014) Tiecke, Tobias; Thompson, Jeffrey Douglas; de Leon, Nathalie Pulmones; Liu, Li; Vuletić, V.; Lukin, Mikhail

    By analogy to transistors in classical electronic circuits, quantum optical switches are important elements of quantum circuits and quantum networks1, 2, 3. Operated at the fundamental limit where a single quantum of light or matter controls another field or material system4, such a switch may enable applications such as long-distance quantum communication5, distributed quantum information processing2 and metrology6, and the exploration of novel quantum states of matter7. Here, by strongly coupling a photon to a single atom trapped in the near field of a nanoscale photonic crystal cavity, we realize a system in which a single atom switches the phase of a photon and a single photon modifies the atom’s phase. We experimentally demonstrate an atom-induced optical phase shift8 that is nonlinear at the two-photon level9, a photon number router that separates individual photons and photon pairs into different output modes10, and a single-photon switch in which a single ‘gate’ photon controls the propagation of a subsequent probe field11, 12. These techniques pave the way to integrated quantum nanophotonic networks involving multiple atomic nodes connected by guided light.