4.4 Article

Ion beam production and study of radioactive isotopes with the laser ion source at ISOLDE

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1361-6471/aa78e0

关键词

laser resonance ionization; ion source; radioactive isotopes; laser spectroscopy; isomer separation; RILIS

资金

  1. Knut and Alice Wallenberg Foundation [KAW 2005-0121]
  2. Swedish Research Council
  3. European Union's Sixth Framework through RIII3-EURONS [506065]
  4. European Union's Seventh Framework Programme for Research, Technological Development and Demonstration [262010 (ENSAR), 267194 (COFUND), 289191 (LA3NET)]
  5. European Union's Horizon Research and Innovation Programme [654002 (ENSAR2)]

向作者/读者索取更多资源

At ISOLDE the majority of radioactive ion beams are produced using the resonance ionization laser ion source (RILIS). This ion source is based on resonant excitation of atomic transitions by wavelength tunable laser radiation. Since its installation at the ISOLDE facility in 1994, the RILIS laser setup has been developed into a versatile remotely operated laser system comprising state-of-the-art solid state and dye lasers capable of generating multiple high quality laser beams at any wavelength in the range of 210-950 nm. A continuous programme of atomic ionization scheme development at CERN and at other laboratories has gradually increased the number of RILIS-ionized elements. At present, isotopes of 40 different elements have been selectively laser-ionized by the ISOLDE RILIS. Studies related to the optimization of the laser-atom interaction environment have yielded new laser ion source types: the laser ion source and trap and the versatile arc discharge and laser ion source. Depending on the specific experimental requirements for beam purity or versatility to switch between different ionization mechanisms, these may offer a favourable alternative to the standard hot metal cavity configuration. In addition to its main purpose of ion beam production, the RILIS is used for laser spectroscopy of radioisotopes. In an ongoing experimental campaign the isotope shifts and hyperfine structure of long isotopic chains have been measured by the extremely sensitive in-source laser spectroscopy method. The studies performed in the lead region were focused on nuclear deformation and shape coexistence effects around the closed proton shell Z = 82. The paper describes the functional principles of the RILIS, the current status of the laser system and demonstrated capabilities for the production of different ion beams including the high-resolution studies of short-lived isotopes and other applications of RILIS lasers for ISOLDE experiments.

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