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The in-gas-jet laser ion source: resonance ionization spectroscopy of radioactive atoms in supersonic gas jets

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arxiv 1211.6649 v1 pith:PACAZMGA submitted 2012-11-28 physics.atom-ph physics.ins-detphysics.opticsphysics.plasm-ph

classification physics.atom-phphysics.ins-detphysics.opticsphysics.plasm-ph
keywords ionizationspectroscopysupersoniclaserresonanceatomsfreejets
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New approaches to perform efficient and selective step-wise Resonance Ionization Spectroscopy (RIS) of radioactive atoms in different types of supersonic gas jets are proposed. This novel application results in a major expansion of the In-Gas Laser Ionization and Spectroscopy (IGLIS) method developed at KU Leuven. Implementation of resonance ionization in the supersonic gas jet allows to increase the spectral resolution by one order of magnitude in comparison with the currently performed in-gas-cell ionization spectroscopy. Properties of supersonic beams, obtained from the de Laval-, the spike-, and the free jet nozzles that are important for the reduction of the spectral line broadening mechanisms in cold and low density environments are discussed. Requirements for the laser radiation and for the vacuum pumping system are also examined. Finally, first results of high-resolution spectroscopy in the supersonic free jet are presented for the 327.4 nm 3d^{10}4s^{2}S_{1/2} \rightarrow 3d^{10}4p^{2}P_{1/2} transition in the stable 63Cu isotope using an amplified single mode laser radiation.

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  1. Study of thorium in hypersonic gas jets: Ionization potentials of Th and Th$^+$

    physics.atom-ph 2025-07 conditional novelty 7.0 of 10

    Precision resonance ionization spectroscopy in a hypersonic gas jet yields the first ionization potential of thorium at 6.306879(14) eV and the second at 12.300(9) eV, using a new Rydberg-series field-ionization technique.

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