Field Deviations in Dipole-Driven Linear Paul Traps: Effects of Endcap Boundaries and their Minimization
Vaibhav Mahendrakar, Nishant Joshi, S. A. Rangwala
Abstract
Deviations from both the ideal linear Paul trap (LPT) geometry as well as the ideal quadrupole driving scheme introduce imperfections to ion trapping potentials. We investigate the effects of these imperfections in a LPT operated in a conventional dipole-drive configuration. We demonstrate the trapping of the Li+ ions along the axial direction with zero and negative end-cap voltages. This occurs due to the modified axial a-q space resulting from radial-to-axial coupling of the electric field. The dipole drive configuration lifts the degeneracy of the radial trapping potentials, resulting in unequal radial secular frequencies, and this is demonstrated experimentally. The combined effects of dipole drive and trap dimensions are summarized in a two-dimensional map that quantifies deviations from ideal behaviour. Based on this map, we propose a geometric modification that significantly reduces radial-to-axial coupling of the potential.
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