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Single-Photon Atomic Cooling - Raizen Lab - The University of ...

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Figure 4.4: <strong>The</strong> potential landscape for atoms in the |F = 2,mF = 2〉 state<br />

due to the magnetic and optical traps as well as gravity.<br />

tal runs reported here, the depopulation beam had approximately 75 nW <strong>of</strong><br />

power, a vertical 1/e 2 waist <strong>of</strong> 16µm, and a horizontal waist <strong>of</strong> 54µm. This<br />

corresponds to a peak intensity <strong>of</strong> 5.5 mW/cm 2 , about twice the transition<br />

saturation intensity. As indicated in Fig. 4.6 the position <strong>of</strong> the depopuation<br />

beam relative to the optical dipole beams is an important parameter. If not<br />

positioned correctly, transfered atoms will gain energy as they fall down the<br />

potential hill, possibly leading to trap loss. We found that <strong>of</strong>fsetting the de-<br />

population beam ∼ 30µm below the center <strong>of</strong> the optical dipole beams yielded<br />

the largest transfer <strong>of</strong> atoms.<br />

At the start <strong>of</strong> the cooling process the centers <strong>of</strong> the magnetic trap and<br />

140

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