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Ramsey Method of Separated Oscillatory Fields for High-Precision Penning Trap Mass Spectrometry

Ramsey’s method of separated oscillatory fields is applied to the excitation of the cyclotron motion of short-lived ions in a Penning trap to improve the precision of their measured mass values. The theoretical description of the extracted ion-cyclotron-resonance line shape is derived and its correc...

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Detalles Bibliográficos
Autores principales: George, S, Baruah, S, Blank, B, Blaum, K, Breitenfeldt, M, Hager, U, Herfurth, F, Herlert, A, Kellerbauer, A G, Kluge, H J, Kretzschmar, M, Lunney, D, Savreux, R, Schwarz, S, Schweikhard, L, Yazidjian, C
Lenguaje:eng
Publicado: 2007
Materias:
Acceso en línea:http://cds.cern.ch/record/1056176
Descripción
Sumario:Ramsey’s method of separated oscillatory fields is applied to the excitation of the cyclotron motion of short-lived ions in a Penning trap to improve the precision of their measured mass values. The theoretical description of the extracted ion-cyclotron-resonance line shape is derived and its correctness demonstrated experimentally by measuring the mass of the short-lived 38Ca nuclide with an uncertainty of 1.1×10-8 using the Penning trap mass spectrometer ISOLTRAP at CERN. The mass of the superallowed beta emitter 38Ca contributes for testing the theoretical corrections of the conserved-vector-current hypothesis of the electroweak interaction. It is shown that the Ramsey method applied to Penning trap mass measurements yields a statistical uncertainty similar to that obtained by the conventional technique but 10 times faster. Thus the technique is a new powerful tool for high-precision mass measurements.