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Narrow Line Cooling and Momentum-Space Crystals

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arxiv physics/0407021 v1 pith:JX6VTLTZ submitted 2004-07-02 physics.atom-ph physics.optics

Narrow Line Cooling and Momentum-Space Crystals

classification physics.atom-ph physics.optics
keywords coolinglinenarrowatomiclasercrystalsdynamicsfrequency
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Narrow line laser cooling is advancing the frontier for experiments ranging from studies of fundamental atomic physics to high precision optical frequency standards. In this paper, we present an extensive description of the systems and techniques necessary to realize 689 nm 1S0 - 3P1 narrow line cooling of atomic 88Sr. Narrow line cooling and trapping dynamics are also studied in detail. By controlling the relative size of the power broadened transition linewidth and the single-photon recoil frequency shift, we show that it is possible to continuously bridge the gap between semiclassical and quantum mechanical cooling. Novel semiclassical cooling process, some of which are intimately linked to gravity, are also explored. Moreover, for laser frequencies tuned above the atomic resonance, we demonstrate momentum-space crystals containing up to 26 well defined lattice points. Gravitationally assisted cooling is also achieved with blue-detuned light. Theoretically, we find the blue detuned dynamics are universal to Doppler limited systems. This paper offers the most comprehensive study of narrow line laser cooling to date.

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