Person: Hau, Lene
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Publication Observation of Coherent Optical Information Storage in an Atomic Medium Using Halted Light Pulses
(Nature Publishing Group, 2001) Liu, Chien; Dutton, Zachary; Behroozi, Cyrus H.; Hau, LeneElectromagnetically induced transparency(1-3) is a quantum interference effect that permits the propagation of light through an otherwise opaque atomic medium; a 'coupling' laser is used to create the interference necessary to allow the transmission of resonant pulses from a 'probe' laser. This technique has been used(4-6) to slow and spatially compress light pulses by seven orders of magnitude, resulting in their complete localization and containment within an atomic cloud(4). Here we use electromagnetically induced transparency to bring laser pulses to a complete stop in a magnetically trapped, cold cloud of sodium atoms. Within the spatially localized pulse region, the atoms are in a superposition state determined by the amplitudes and phases of the coupling and probe laser fields. Upon sudden turn-off of the coupling laser, the compressed probe pulse is effectively stopped; coherent information initially contained in the laser fields is 'frozen' in the atomic medium for up to 1 ms. The coupling laser is turned back on at a later time and the probe pulse is regenerated: the stored coherence is read out and transferred back into the radiation field. We present a theoretical model that reveals that the system is self-adjusting to minimize dissipative loss during the 'read' and 'write' operations. We anticipate applications of this phenomenon for quantum information processing.
Publication Observation of Quantum Shock Waves Created With Ultra-Compressed Slow Light Pulses in a Bose-Einstein Condensate
(American Association for the Advancement of Science, 2001) Dutton, Zachary; Budde, Michael; Slowe, Christopher; Hau, LeneWe have used an extension of our slow light technique to provide a method for inducing small density defects in a Bose-Einstein condensate. These sub- resolution, micrometer-sized defects evolve into large-amplitude sound waves. We present an experimental observation and theoretical investigation of the resulting breakdown of superfluidity, and we observe directly the decay of the narrow density defects into solitons, the onset of the "snake" instability, and the subsequent nucleation of vortices.
Publication Light Speed Reduction to 17 Metres per Second in an Ultracold Atomic Gas
(Nature Publishing Group, 1999) Hau, Lene; Harris, S. E.; Dutton, Zachary; Behroozi, Cyrus H.Techniques that use quantum interference effects are being actively investigated to manipulate the optical properties of quantum systems. One such example is electromagnetically induced transparency, a quantum effect that permits the propagation of light pulses through an otherwise opaque medium. Here we report an experimental demonstration of electromagnetically induced transparency in an ultracold gas of sodium atoms, in which the optical pulses propagate at twenty million times slower than the speed of light in a vacuum. The gas is cooled to nanokelvin temperatures by laser and evaporative cooling. The quantum interference controlling the optical properties of the medium is set up by a 'coupling' laser beam propagating at a right angle to the pulsed 'probe' beam. At nanokelvin temperatures, the variation of refractive index with probe frequency can be made very steep. In conjunction with the high atomic density, this results in the exceptionally low light speeds observed. By cooling the cloud below the transition temperature for Bose-Einstein condensation (causing a macroscopic population of alkali atoms in the quantum ground state of the confining potential), we observe even lower pulse propagation velocities (17 m s^(-1)) owing to the increased atom density. We report an inferred nonlinear refractive index of 0.18 cm^(2)W^(-1) and find that the system shows exceptionally large optical nonlinearities, which are of potential fundamental and technological interest for quantum optics.
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, JeneWe 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.