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Hau, Lene

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Hau

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Lene

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Hau, Lene

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Now showing 1 - 7 of 7
  • Publication

    Field Ionization of Cold Atoms Near the Wall of a Single Carbon Nanotube

    (American Physical Society, 2010) Goodsell, Anne; Ristroph, Trygve; Golovchenko, Jene; Hau, Lene

    We observe the capture and field ionization of individual atoms near the side wall of a single suspended nanotube. Extremely large cross sections for ionization from an atomic beam are observed at modest voltages due to the nanotube’s small radius and extended length. The effects of the field strength on both the atomic capture and the ionization process are clearly distinguished in the data, as are prompt and delayed ionizations related to the locations at which they occur. Efficient and sensitive neutral atom detectors can be based on the nanotube capture and wall ionization processes.

  • Publication

    Waveguide for cold atoms: Spin-1 magnetic particles and a filamentary current

    (American Physical Society (APS), 1996) Berg-Sorensen, Kirstine; Burns, Michael; Golovchenko, Jene; Hau, Lene

    We consider a waveguide for cold neutral atoms with a magnetic moment proportional to their spin angular momentum. The waveguide consists of a thin wire carrying a constant current. For the spin-1 case, we find bound states for the two-dimensional part of the motion around the wire, and present numerical and approximate analytic results for these bound states. In an experiment, the bound states can decay due to various effects, and we calculate the time scales involved.

  • Publication

    Supersymmetry and the Binding of a Magnetic Atom to a Filamentary Current

    (American Physical Society, 1995) Hau, Lene; Golovchenko, Jene; Burns, Michael

    We suggest the binding of neutral atoms to a current carrying wire through the interaction between the atomic magnetic dipole moment and the wire's magnetic field. The theoretical description is based upon an extension of the concept of supersymmetry to multicomponent wave functions. A solution for spin 1/2 particles is obtained directly in coordinate space. Spin 1 particles are considered as well. Experimentally, the system should be immediately realizable for 25 μK sodium atoms around a wire with a diameter of 0.5 μm and a current of 400 μA.

  • Publication

    Near-Resonant Spatial Images of Confined Bose-Einstein Condensates in a 4-Dee Magnetic Bottle

    (American Physical Society, 1998) Hau, Lene; Busch, B. D.; Liu, Chien; Dutton, Zachary; Burns, Michael; Golovchenko, Jene

    We present quantitative measurements of the spatial density profile of Bose-Einstein condensates of sodium atoms confined in a 4-Dee magnetic bottle. The condensates are imaged in transmission with near-resonant laser light. We demonstrate that the Thomas-Fermi surface of a condensate can be determined to better than 1%. More generally, we obtain excellent agreement with mean-field theory. We conclude that precision measurements of atomic scattering lengths and interactions between phase-separated cold atoms in a harmonic trap can be performed with high precision using this method.

  • Publication

    Bound States of Guided Matter Waves: An Atom and a Charged Wire

    (American Physical Society, 1992) Hau, Lene; Burns, Michael; Golovchenko, Jene

    We argue that it is possible to bind a neutral atom in stable orbits around a wire charged by a time-varying sinusoidal voltage. Both classical and quantum-mechanical theories for this system are discussed, and a unified approach to the Kapitza picture of effective potentials associated with high-frequency fields is presented. It appears that cavities and waveguides for neutral-atomic-matter waves may be fashioned from these considerations.

  • Publication

    Detection and Quantized Conductance of Neutral Atoms Near a Charged Carbon Nanotube

    (American Physical Society (APS), 2005) Ristroph, Trygve; Goodsell, Anne; Golovchenko, Jene; Hau, Lene

    We describe a novel single atom detector that uses the high electric field surrounding a charged single-walled carbon nanotube to attract and subsequently field-ionize neutral atoms. A theoretical study of the field-ionization tunneling rates for atomic trajectories in the attractive potential near a nanowire shows that a broadly applicable, high spatial resolution, low-power, neutral-atom detector with nearly 100% efficiency is realizable with present-day technology. Calculations also show that the system can provide the first opportunity to study quantized conductance phenomena when detecting cold neutral atoms with mean velocities less than 15 m/s.

  • Publication

    Quantum Channeling Effects for 1 MeV Positrons

    (American Physical Society (APS), 1995) Haakenaasen, R.; Hau, Lene; Golovchenko, Jene; Palathingal, J. C.; Peng, J. P.; Asoka-Kumar, P.; Lynn, K. G.

    A high resolution angular study of positrons transmitted through a thin single crystal of Si clearly reveals a detailed fine structure due to strong quantum channeling effects. The beam transmitted in the forward direction displays many features associated with dynamical diffraction effects and long coherence lengths. Calculations are presented showing that in flight annihilation of channeled positrons can serve as a solid state probe of electron and spin densities in thin crystals.