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Featured researches published by B. Kindler.


Inorganic Chemistry | 2014

Superheavy Element Flerovium (Element 114) Is a Volatile Metal

A. Yakushev; J. M. Gates; A. Türler; M. Schädel; Christoph E. Düllmann; D. Ackermann; Lise-Lotte Andersson; Michael Block; W. Brüchle; Jan Dvorak; K. Eberhardt; H. G. Essel; J. Even; Ulrika Forsberg; A. Gorshkov; R. Graeger; Kenneth E. Gregorich; Willi Hartmann; R.-D. Herzberg; F. P. Heßberger; D. Hild; A. Hübner; Egon Jäger; J. Khuyagbaatar; B. Kindler; Jens Volker Kratz; J. Krier; N. Kurz; B. Lommel; L. Niewisch

The electron shell structure of superheavy elements, i.e., elements with atomic number Z ≥ 104, is influenced by strong relativistic effects caused by the high Z. Early atomic calculations on element 112 (copernicium, Cn) and element 114 (flerovium, Fl) having closed and quasi-closed electron shell configurations of 6d(10)7s(2) and 6d(10)7s(2)7p1/2(2), respectively, predicted them to be noble-gas-like due to very strong relativistic effects on the 7s and 7p1/2 valence orbitals. Recent fully relativistic calculations studying Cn and Fl in different environments suggest them to be less reactive compared to their lighter homologues in the groups, but still exhibiting a metallic character. Experimental gas-solid chromatography studies on Cn have, indeed, revealed a metal-metal bond formation with Au. In contrast to this, for Fl, the formation of a weak bond upon physisorption on a Au surface was inferred from first experiments. Here, we report on a gas-solid chromatography study of the adsorption of Fl on a Au surface. Fl was produced in the nuclear fusion reaction (244)Pu((48)Ca, 3-4n)(288,289)Fl and was isolated in-flight from the primary (48)Ca beam in a physical recoil separator. The adsorption behavior of Fl, its nuclear α-decay product Cn, their lighter homologues in groups 14 and 12, i.e., Pb and Hg, and the noble gas Rn were studied simultaneously by isothermal gas chromatography and thermochromatography. Two Fl atoms were detected. They adsorbed on a Au surface at room temperature in the first, isothermal part, but not as readily as Pb and Hg. The observed adsorption behavior of Fl points to a higher inertness compared to its nearest homologue in the group, Pb. However, the measured lower limit for the adsorption enthalpy of Fl on a Au surface points to the formation of a metal-metal bond of Fl with Au. Fl is the least reactive element in the group, but still a metal.


European Physical Journal A | 2016

Review of even element super-heavy nuclei and search for element 120

S. Hofmann; S. Heinz; Robert B. Mann; J. Maurer; G. Münzenberg; S. Antalic; W. Barth; H. G. Burkhard; L. Dahl; K. Eberhardt; R. Grzywacz; J. H. Hamilton; R. A. Henderson; J. M. Kenneally; B. Kindler; I. Kojouharov; R. Lang; B. Lommel; K. Miernik; D. Miller; K. J. Moody; Kosuke Morita; K. Nishio; A. G. Popeko; J. B. Roberto; J. Runke; K. Rykaczewski; S. Saro; Christoph Scheidenberger; H.-J. Schott

Abstract.The reaction 54Cr


Science | 2014

Synthesis and detection of a seaborgium carbonyl complex

J. Even; A. Yakushev; Christoph E. Düllmann; H. Haba; Masato Asai; Tetsuya Sato; H. Brand; A. Di Nitto; R. Eichler; Fangli Fan; Willi Hartmann; M. Huang; E. Jäger; Daiya Kaji; J. Kanaya; Y. Kaneya; J. Khuyagbaatar; B. Kindler; J. V. Kratz; J. Krier; Yuki Kudou; N. Kurz; B. Lommel; Sunao Miyashita; Kosuke Morita; Masashi Murakami; Yuichiro Nagame; Heino Nitsche; K. Ooe; Z. H. Qin

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Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms | 2003

Energy and range focusing of in-flight separated exotic nuclei - A study for the energy-buncher stage of the low-energy branch of the Super-FRS

C. Scheidenberger; H. Geissel; M. Maier; G. Münzenberg; Mauricio Portillo; G. Savard; P. Van Duppen; H. Weick; M. Winkler; M. Yavor; F. Attallah; K.-H. Behr; V. Chichkine; S.A. Eliseev; M. Hausmann; M. Hellström; E. Kaza; B. Kindler; Yu. A. Litvinov; B. Lommel; G. Marx; Marta Matos; N. Nankov; T. Ohtsubo; K. Sümmerer; Z.-Y. Sun; Z. Zhou

248Cm was investigated at the velocity filter SHIP at GSI, Darmstadt, with the intention to study production and decay properties of isotopes of element 120. Three correlated signals were measured, which occurred within a period of 279ms. The heights of the signals correspond with the expectations for a decay sequence starting with an isotope of element 120. However, a complete decay chain cannot be established, since a signal from the implantation of the evaporation residue cannot be identified unambiguously. Measured properties of the event chain are discussed in detail. The result is compared with theoretical predictions. Previously measured decay properties of even element super-heavy nuclei were compiled in order to find arguments for an assignment from the systematics of experimental data. In the course of this review, a few tentatively assigned data could be corrected. New interpretations are given for results which could not be assigned definitely in previous studies. The discussion revealed that the cross-section for production of element 120 could be high enough so that a successful experiment seems possible with presently available techniques. However, a continuation of the experiment at SHIP for a necessary confirmation of the results obtained in a relatively short irradiation of five weeks is not possible at GSI presently. Therefore, we decided to publish the results of the measurement and of the review as they exist now. In the summary and outlook section we also present concepts for the continuation of research in the field of super-heavy nuclei.


Physical Review Letters | 2015

New Short-Lived Isotope 221U and the Mass Surface Near N=126

J. Khuyagbaatar; A. Yakushev; Ch. E. Düllmann; D. Ackermann; L.-L. Andersson; Michael Block; H. Brand; D. M. Cox; J. Even; Ulrika Forsberg; P. Golubev; Willi Hartmann; R.-D. Herzberg; F. P. Heßberger; J. Hoffmann; A. Hübner; E. Jäger; J. Jeppsson; B. Kindler; J. V. Kratz; J. Krier; N. Kurz; B. Lommel; Moumita Maiti; S. Minami; A. K. Mistry; Ch. M. Mrosek; I. Pysmenetska; Dirk Rudolph; Luis Sarmiento

A carbonyl compound that tips the scales Life is short for the heaviest elements. They emerge from high-energy nuclear collisions with scant time for detection before they break up into lighter atoms. Even et al. report that even a few seconds is long enough for carbon to bond to the 106th element, seaborgium (see the Perspective by Loveland). The authors used a custom apparatus to direct the freshly made atoms out of the hot collision environment and through a stream of carbon monoxide and helium. They compared the detected products with theoretical modeling results and conclude that hexacarbonyl Sg(CO)6 was the most likely structural formula. Science, this issue p. 1491; see also p. 1451 A special apparatus enables synthesis of a compound with carbon bonds to a short-lived element produced via nuclear reaction. [Also see Perspective by Loveland] Experimental investigations of transactinoide elements provide benchmark results for chemical theory and probe the predictive power of trends in the periodic table. So far, in gas-phase chemical reactions, simple inorganic compounds with the transactinoide in its highest oxidation state have been synthesized. Single-atom production rates, short half-lives, and harsh experimental conditions limited the number of experimentally accessible compounds. We applied a gas-phase carbonylation technique previously tested on short-lived molybdenum (Mo) and tungsten (W) isotopes to the preparation of a carbonyl complex of seaborgium, the 106th element. The volatile seaborgium complex showed the same volatility and reactivity with a silicon dioxide surface as those of the hexacarbonyl complexes of the lighter homologs Mo and W. Comparison of the product’s adsorption enthalpy with theoretical predictions and data for the lighter congeners supported a Sg(CO)6 formulation.


Radiochimica Acta | 2014

In-situ formation, thermal decomposition, and adsorption studies of transition metal carbonyl complexes with short-lived radioisotopes

J. Even; A. Yakushev; Christoph E. Düllmann; Jan Dvorak; R. Eichler; Oliver Gothe; Willy Hartmann; D. Hild; Egon Jäger; J. Khuyagbaatar; B. Kindler; Jens Volker Kratz; J. Krier; B. Lommel; L. Niewisch; Heino Nitsche; Inna Pysmenetska; M. Schädel; B. Schausten; A. Türler; N. Wiehl; David Wittwer

Abstract The relative momentum spread of in-flight separated exotic nuclear beams produced in fragmentation and/or fission reactions is of the order of a few percent. A new technique is presented, which reduces the momentum spread significantly, and first experimental results obtained with relativistic projectile fragments are shown. This technique is the key to experiments with slowed-down and stopped beams, in particular for the efficient stopping of relativistic exotic nuclei in gas-filled stopping cells. It will be employed at the energy-buncher stage of the low-energy branch of the Super-FRS facility. The ion-optical design of the energy buncher is presented and a brief outlook to the experimental program is given.


Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms | 2003

High-power production targets for the Super-FRS using a fast extraction scheme

N. A. Tahir; M. Winkler; J. Kojouharova; P. Roussel-Chomaz; V. Chishkine; H. Geissel; D. H. H. Hoffmann; B. Kindler; F. Landre-Pellemoine; B. Lommel; W Mittig; G. Münzenberg; A. Shutov; H. Weick; M. Yavor

Two short-lived isotopes ^{221}U and ^{222}U were produced as evaporation residues in the fusion reaction ^{50}Ti+^{176}Yb at the gas-filled recoil separator TASCA. An α decay with an energy of E_{α}=9.31(5)  MeV and half-life T_{1/2}=4.7(7)  μs was attributed to ^{222}U. The new isotope ^{221}U was identified in α-decay chains starting with E_{α}=9.71(5)  MeV and T_{1/2}=0.66(14)  μs leading to known daughters. Synthesis and detection of these unstable heavy nuclei and their descendants were achieved thanks to a fast data readout system. The evolution of the N=126 shell closure and its influence on the stability of uranium isotopes are discussed within the framework of α-decay reduced width.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2002

Improvement of the target durability for heavy-element production

B. Lommel; Dagmar Gembalies-Datz; Willi Hartmann; S. Hofmann; B. Kindler; Josef Klemm; J. Kojouharova; Jutta Steiner

Abstract We report on the in-situ synthesis of metal carbonyl complexes with short-lived isotopes of transition metals. Complexes of molybdenum, technetium, ruthenium and rhodium were synthesized by thermalisation of products of neutron-induced fission of 249Cf in a carbon monoxide-nitrogen mixture. Complexes of tungsten, rhenium, osmium, and iridium were synthesized by thermalizing short-lived isotopes produced in 24Mg-induced fusion evaporation reactions in a carbon monoxide containing atmosphere. The chemical reactions took place at ambient temperature and pressure conditions. The complexes were rapidly transported in a gas stream to collection setups or gas phase chromatography devices. The physisorption of the complexes on Au and SiO2 surfaces was studied. We also studied the stability of some of the complexes, showing that these start to decompose at temperatures above 300 ℃ in contact with a quartz surface. Our studies lay a basis for the investigation of such complexes with transactinides.


Radiochimica Acta | 2016

Decomposition studies of group 6 hexacarbonyl complexes. Part 1: Production and decomposition of Mo(CO)6 and W(CO)6

I. Usoltsev; R. Eichler; Yuezhao Wang; J. Even; A. Yakushev; H. Haba; M. Asai; H. Brand; A. Di Nitto; Ch. E. Düllmann; F. Fangli; Willi Hartmann; M. Huang; Egon Jäger; Daiya Kaji; J. Kanaya; Y. Kaneya; J. Khuyagbaatar; B. Kindler; J. V. Kratz; J. Krier; Yuki Kudou; N. Kurz; B. Lommel; Sunao Miyashita; Kosuke Morita; Masashi Murakami; Y. Nagame; Heino Nitsche; K. Ooe

Abstract The high-power production target of the Super-FRS [H. Geissel et al., these Proceedings] will be irradiated by very intense heavy-ion beams which will be delivered from the future SIS100/200 [An International Accelerator Facility for Beams of Ions and Antiprotons, GSI-Report, 2001] synchrotron facility at the Gesellschaft fur Schwerionenforschung (GSI) Darmstadt. This paper presents calculations of the thermodynamic and the hydrodynamic response of such a target, considering that a uranium ion beam with an energy of 1 GeV/u and an intensity of 10 12 particles will impinge within 50 ns on a solid carbon target with a thickness of 4 g/cm 2 . Due to the high beam intensity the target may be strongly heated and could be destroyed in a single shot. The purpose of this work is to investigate with the help of two-dimensional numerical simulations how one can minimize target heating and avoid traget destruction.


Journal of Physics G | 2010

The new isotope 179Pb and α-decay properties of 179Tlm

A. N. Andreyev; S. Antalic; D. Ackermann; T. E. Cocolios; V. F. Comas; J. Elseviers; S. Franchoo; S. Heinz; J. A. Heredia; F. P. Heßberger; S. Hofmann; M. Huyse; J. Khuyagbaatar; I. Kojouharov; B. Kindler; B. Lommel; R. Mann; R. D. Page; S Rinta-Antila; P J Sapple; S. Saro; P. Van Duppen; M. Venhart; H. V. Watkins

Abstract The search for new elements with reaction cross-sections in the picobarn-region makes it necessary to enhance the beam intensity on the target in order to reduce the required beam time to a reasonable length. To synthesise heavy elements with the SHIP set-up, one mostly uses the heaviest stable elements available as target material, e.g. lead and bismuth. At the moment, the intensity that could be brought on the targets is limited by the low melting temperatures of Pb with 327.5°C and Bi with 271.3°C. To enhance the lifetime of the targets, we work on three different approaches: reduction of the thermal stress, increase in the melting temperature, and active cooling. We report on the first results, plans and future perspectives.

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B. Lommel

Comenius University in Bratislava

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S. Hofmann

Goethe University Frankfurt

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S. Antalic

Comenius University in Bratislava

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J. Khuyagbaatar

University of Jyväskylä

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I. Kojouharov

GSI Helmholtz Centre for Heavy Ion Research

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S. Saro

Comenius University in Bratislava

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K. Nishio

Japan Atomic Energy Agency

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R. D. Page

University of Liverpool

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M. Huyse

Katholieke Universiteit Leuven

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