R. Otto

How can a 22-pole ion trap exhibit 10 local minima in the effective potential?

R. Otto [1], P. Hlavenka [1], S. Trippel [1], J. Mikosch [1], K. Singer [2,1], M. Weidemueller, R. Wester [1]

Abstract

The column density distribution of trapped OH$^-$ ions in a 22-pole ion trap is measured for different trap parameters. The density is obtained from position-dependent photodetachment rate measurements. Overall, agreement is found with the effective potential of an ideal 22-pole. However, in addition we observe 10 distinct minima in the trapping potential, which indicate a breaking of the 22-fold symmetry. Numerical simulations show that a displacement of a subset of the radiofrequency electrodes can serve as an explanation for this symmetry breaking.

Photodetachment of cold OH- in a multipole ion trap

S. Trippel [1], J. Mikosch [1], R. Berhane [1], R. Otto [1], M. Weidemüller, R. Wester [1]

Abstract

The absolute photodetachment cross section of OH- anions at a rotational and translational temperature of 170K is determined by measuring the detachment-induced decay rate of the anions in a multipole radio-frequency ion trap. In comparison with previous results, the obtained cross section shows the importance of the initial rotational state distribution. Using a tomography scan of the photodetachment laser through the trapped ion cloud, the derived cross section is model-independent and thus features a small systematic uncertainty. The tomography also yields the column density of the OH- anions in the 22-pole ion trap in good agreement with the expected trapping potential of a large field free region bound by steep potential walls.