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The elliptical Penning trap: Experimental investigations and simulations
Authors:Martin Breitenfeldt  Sudarshan Baruah  Klaus Blaum  Alexander Herlert  Martin Kretzschmar  Franklin Martinez  Gerrit Marx  Lutz Schweikhard  Noelle Walsh
Institution:aInstitut für Physik, Ernst-Moritz-Arndt-Universität, 17487 Greifswald, Germany;bInstitut für Physik, Johannes Gutenberg-Universität, 55099 Mainz, Germany;cGesellschaft für Schwerionenforschung GSI, Planckstrasse 1, 64291 Darmstadt, Germany;dPhysics Department, CERN, 1211 Geneva 23, Switzerland
Abstract:The application of an additional azimuthal quadrupolar electrostatic field to a Penning trap leads to a field configuration referred to as an elliptical Penning trap. The resulting changes of the radial ion motions have been investigated experimentally and by use of simulations. The eigenfrequencies, i.e., the magnetron frequency View the MathML source and the reduced cyclotron frequency View the MathML source, are found to be shifted with respect to those of the standard Penning trap ω, ω+, respectively. As the shift of the magnetron frequency View the MathML source is larger than that of the reduced cyclotron frequency View the MathML source their sum View the MathML source is also a function of the ellipticity and no longer equal to the cyclotron frequency in the absence of an electric trapping field ωc=qB/m. The frequency shifts were investigated for argon and fullerene ions. The experimental studies were performed by time-of-flight (ToF) analysis of the ion cyclotron resonance and by Fourier-transform ion-cyclotron-resonance mass spectrometry (FT-ICR MS). The experimental and simulated values are in agreement with theoretical predictions M. Kretzschmar, this issue] when the influence of higher multipole terms is taken into account.
Keywords:Ion storage  Penning trap  Ion motion  Frequency shift  FT-ICR MS
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