Advancing Radiation-Detected Resonance Ionization towards Heavier Elements and More Exotic Nuclides

Author:

Warbinek JessicaORCID,Anđelić Brankica,Block MichaelORCID,Chhetri Premaditya,Claessens Arno,Ferrer Rafael,Giacoppo FrancescaORCID,Kaleja Oliver,Kieck TomORCID,Kim EunKang,Laatiaoui MustaphaORCID,Lantis Jeremy,Mistry Andrew,Münzberg Danny,Nothhelfer StevenORCID,Raeder SebastianORCID,Rey-Herme Emmanuel,Rickert Elisabeth,Romans JekabsORCID,Romero-Romero ElisaORCID,Vandebrouck Marine,Van Duppen PietORCID,Walther ThomasORCID

Abstract

RAdiation-Detected Resonance Ionization Spectroscopy (RADRIS) is a versatile method for highly sensitive laser spectroscopy studies of the heaviest actinides. Most of these nuclides need to be produced at accelerator facilities in fusion-evaporation reactions and are studied immediately after their production and separation from the primary beam due to their short half-lives and low production rates of only a few atoms per second or less. Only recently, the first laser spectroscopic investigation of nobelium (Z=102) was performed by applying the RADRIS technique in a buffer-gas-filled stopping cell at the GSI in Darmstadt, Germany. To expand this technique to other nobelium isotopes and for the search for atomic levels in the heaviest actinide element, lawrencium (Z=103), the sensitivity of the RADRIS setup needed to be further improved. Therefore, a new movable double-detector setup was developed, which enhances the overall efficiency by approximately 65% compared to the previously used single-detector setup. Further development work was performed to enable the study of longer-lived (t1/2>1 h) and shorter-lived nuclides (t1/2<1 s) with the RADRIS method. With a new rotatable multi-detector design, the long-lived isotope 254Fm (t1/2=3.2 h) becomes within reach for laser spectroscopy. Upcoming experiments will also tackle the short-lived isotope 251No (t1/2=0.8 s) by applying a newly implemented short RADRIS measurement cycle.

Funder

Federal Ministry of Education and Research

European Union Horizon 2020 research and innovation programme

Publisher

MDPI AG

Subject

Condensed Matter Physics,Nuclear and High Energy Physics,Atomic and Molecular Physics, and Optics

Reference32 articles.

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Laser resonance chromatography: First commissioning results and future prospects;Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms;2024-10

2. In-gas-jet laser spectroscopy of No254 with JetRIS;Physical Review Research;2024-06-24

3. The quest for superheavy elements and the limit of the periodic table;Nature Reviews Physics;2023-12-11

4. Opportunities and limitations of in-gas-cell laser spectroscopy of the heaviest elements with RADRIS;Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms;2023-08

5. New Developments in the Production and Research of Actinide Elements;Atoms;2022-06-08

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