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Experiments to Control Atom Number and Phase-Space Density in ...

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Figure 7.6: Differential pump<strong>in</strong>g tube. The <strong>in</strong>ner diameter changes from5 mm <strong>to</strong>13 mm<br />

<strong>in</strong> 9 steps. The groove <strong>in</strong> the back flange (right) allows for mount<strong>in</strong>g of the Zeeman slower<br />

tube.<br />

tube. Thus, the assembly requires the removal of the flange from the front end of the<br />

differential pump<strong>in</strong>g tube; only then can the Zeeman slower tube (<strong>in</strong>ner diameter =<br />

25.53 mm) slide over the differential pump<strong>in</strong>g tube. The flange is therefore cut <strong>in</strong> half,<br />

<strong>and</strong> the two halves are reassembled <strong>and</strong> connected <strong>to</strong> the gate valve after the Zeeman<br />

slower coils are <strong>in</strong> place. A pho<strong>to</strong>graph of the cut flange is shown <strong>in</strong> figure 7.7.<br />

Figure 7.7: Cut flange on the differential pump<strong>in</strong>g tube. After the Zeeman slower coils<br />

are <strong>in</strong> place, the two halves are assembled <strong>and</strong> connected <strong>to</strong> the gate valve.<br />

7.1.3 Science Chamber<br />

The science chamber consists of a ”spherical octagon” chamber manufactured<br />

by Kimball Physics (MCF600-SO200800). Broadb<strong>and</strong> anti-reflection (BBAR) coated<br />

97

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