TY - JOUR
T1 - Resonance excitation of ions stored in a quadrupole ion trap Part II. Further simulation studies
AU - March, R.E.
AU - McMahon, A.W.
AU - Tracey Allinson, E.
AU - Londry, F.A.
AU - Alfred, R.L.
AU - Todd, J.F.J.
AU - Vedel, F.
PY - 1990/10/1
Y1 - 1990/10/1
N2 - Further simulation studies have been carried out on the behaviour of ions stored in a quadrupole ion trap and subjected to small auxiliary potentials oscillating at frequencies related to the secular frequencies of ion motion. Quadrupolar excitation at frequencies of βrΩ and βzΩ, that is, twice the fundamental radial and axial secular frequencies, respectively, results in parametric resonance which induces rapid excitation of ion motion. Frequency analysis of ion axial and radial motions has been carried out to determine the effects of collisions on ion motion, and of auxiliary potential amplitude and frequency for several working points in the stability diagram. A systematic survey was carried out of the variation, as a function of working point, of ion kinetic energy averaged over the final three r.f. cycles prior to ejection. The chosen working points lay on the locus of βrΩ = βzΩ, the two main areas of the stability diagram for which βzΩ < βrΩ and βrΩ < βzΩ, the qz axis, and working points for which az was varied at constant qz. Ion kinetic energies averaged over the final three r.f. cycles are interpreted in terms of potential well-depths, while the irradiation times required for ion ejection indicate relative efficiencies for energy absorption by the subject ion from the resonance radiation.
AB - Further simulation studies have been carried out on the behaviour of ions stored in a quadrupole ion trap and subjected to small auxiliary potentials oscillating at frequencies related to the secular frequencies of ion motion. Quadrupolar excitation at frequencies of βrΩ and βzΩ, that is, twice the fundamental radial and axial secular frequencies, respectively, results in parametric resonance which induces rapid excitation of ion motion. Frequency analysis of ion axial and radial motions has been carried out to determine the effects of collisions on ion motion, and of auxiliary potential amplitude and frequency for several working points in the stability diagram. A systematic survey was carried out of the variation, as a function of working point, of ion kinetic energy averaged over the final three r.f. cycles prior to ejection. The chosen working points lay on the locus of βrΩ = βzΩ, the two main areas of the stability diagram for which βzΩ < βrΩ and βrΩ < βzΩ, the qz axis, and working points for which az was varied at constant qz. Ion kinetic energies averaged over the final three r.f. cycles are interpreted in terms of potential well-depths, while the irradiation times required for ion ejection indicate relative efficiencies for energy absorption by the subject ion from the resonance radiation.
UR - http://www.scopus.com/inward/record.url?eid=2-s2.0-0001245148&partnerID=MN8TOARS
U2 - 10.1016/0168-1176(90)85024-V
DO - 10.1016/0168-1176(90)85024-V
M3 - Article
SN - 0168-1176
VL - 99
SP - 109
EP - 124
JO - International Journal of Mass Spectrometry and Ion Processes
JF - International Journal of Mass Spectrometry and Ion Processes
IS - 1-2
ER -