In 2014 the first synthesis of a transactinide carbonyl complex - seaborgium hexacarbonyl - was reported. This was achieved in gas-phase chemical experiments in a beam-free environment behind the recoil separator GARIS. Extending this work to heavier elements requires more efficient techniques to synthesize carbonyl complexes as production rates of transactinide elements drop with increasing atomic number. A novel approach was thus conceived, which retains the benefit of a beam-free environment but avoids the physical preseparation step. The latter reduces the yields for products of asymmetric reactions such as those used for the synthesis of suitable isotopes of Sg, Bh, Hs and Mt. For this a series of experiments with accelerator-produced radioisotopes of the lighter homologues W, Re and Os was carried out at the tandem accelerator of JAEA Tokai, Japan. A newly developed double-chamber system, which allows for a decoupled recoil ion thermalization and chemical complex formation, was used, which avoids the low-efficiency physical preseparation step. Here, we demonstrate the feasibility of this newly developed method using accelerator-produced short-lived radioisotopes of the 5d homologues of the early transactinides.

Application of a novel gas phase synthesis approach to carbonyl complexes of accelerator-produced 5d transition metals / Gotz, M.; Yakushev, A.; Gotz, S.; Di Nitto, A.; Dullmann, C. E.; Asai, M.; Kindler, B.; Krier, J.; Lommel, B.; Nagame, Y.; Sato, T. K.; Suzuki, H.; Tomitsuka, T.; Tokoi, K.; Toyoshima, A.; Tsukada, K.. - In: RADIOCHIMICA ACTA. - ISSN 0033-8230. - 0:0(2021). [10.1515/ract-2021-1028]

Application of a novel gas phase synthesis approach to carbonyl complexes of accelerator-produced 5d transition metals

Di Nitto A.;
2021

Abstract

In 2014 the first synthesis of a transactinide carbonyl complex - seaborgium hexacarbonyl - was reported. This was achieved in gas-phase chemical experiments in a beam-free environment behind the recoil separator GARIS. Extending this work to heavier elements requires more efficient techniques to synthesize carbonyl complexes as production rates of transactinide elements drop with increasing atomic number. A novel approach was thus conceived, which retains the benefit of a beam-free environment but avoids the physical preseparation step. The latter reduces the yields for products of asymmetric reactions such as those used for the synthesis of suitable isotopes of Sg, Bh, Hs and Mt. For this a series of experiments with accelerator-produced radioisotopes of the lighter homologues W, Re and Os was carried out at the tandem accelerator of JAEA Tokai, Japan. A newly developed double-chamber system, which allows for a decoupled recoil ion thermalization and chemical complex formation, was used, which avoids the low-efficiency physical preseparation step. Here, we demonstrate the feasibility of this newly developed method using accelerator-produced short-lived radioisotopes of the 5d homologues of the early transactinides.
2021
Application of a novel gas phase synthesis approach to carbonyl complexes of accelerator-produced 5d transition metals / Gotz, M.; Yakushev, A.; Gotz, S.; Di Nitto, A.; Dullmann, C. E.; Asai, M.; Kindler, B.; Krier, J.; Lommel, B.; Nagame, Y.; Sato, T. K.; Suzuki, H.; Tomitsuka, T.; Tokoi, K.; Toyoshima, A.; Tsukada, K.. - In: RADIOCHIMICA ACTA. - ISSN 0033-8230. - 0:0(2021). [10.1515/ract-2021-1028]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/872052
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