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

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Spectroscopy Cell<br />

f=25mm<br />

Spectroscopy Laser<br />

polariz<strong>in</strong>g beam<br />

splitter cube<br />

half-wave plate<br />

quarter-wave plate<br />

mirror<br />

spherical lens<br />

pho<strong>to</strong>diode<br />

anamorphic<br />

prism pair<br />

<strong>to</strong> frequency oset lock setup<br />

optical<br />

isola<strong>to</strong>r<br />

Figure 7.27: <strong>Phase</strong> modulation spectroscopy setup.<br />

shows the error signal. The laser is typically locked <strong>to</strong> the |F = 3/2〉 → |excited state〉<br />

transition of the D2 l<strong>in</strong>e.<br />

F=3/2 <strong>to</strong> excited<br />

state transition<br />

crossover<br />

transition<br />

F=1/2 <strong>to</strong> excited<br />

state transition<br />

Figure 7.28: Error signal generated by the phase modulation spectroscopy setup. The<br />

three transition l<strong>in</strong>es correspond <strong>to</strong> the |F = 3/2〉, |F = 1/2〉 <strong>and</strong> the crossover transitions.<br />

The blue l<strong>in</strong>e represents the predicted error signal.<br />

119

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