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Adsorption of 220Rn on dioxygenyl hexafluoroantimonate surface. A model experiment for studies of the chemistry of element 112

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
By comparison of the ionization potentials and ionic radius (estimated in this work) the chemical reactivity of element 112 is predicted. Due to the expected noble gas behaviour of element 112, we propose an investigation of adsorption of 220Rn on a dioxygenyl hexafluoroantimonate thin film surface as a model experiment for the chemistry of element 112.
Słowa kluczowe
Czasopismo
Rocznik
Strony
137--139
Opis fizyczny
Bibliogr. 16 poz., rys.
Twórcy
autor
  • Department of Radiochemistry, Institute of Nuclear Chemistry and Technology, 16 Dorodna Str., 03-195 Warsaw, Poland, Tel.: +48 22/ 811 27 35, Fax: +48 22/ 811 15 32
autor
  • Department of Radiochemistry, Institute of Nuclear Chemistry and Technology, 16 Dorodna Str., 03-195 Warsaw, Poland, Tel.: +48 22/ 811 27 35, Fax: +48 22/ 811 15 32
Bibliografia
  • 1. Adloff JP, Guillaumont R (1993) Fundamentals of radiochemistry. CRC Press, Boca Raton
  • 2. Desclaux JP (1973) Relativistic Dirac−Fock expectation values for atoms with atomic number Z = 1−120. Atom Data Nucl Data 12:311−386
  • 3. Eichler R, Schaedel M (2002) Prediction of adsorption enthalpies of the SHE 112 and 114 on transition metals. In: GSI Scientific Report 2001. GSI, Darmstadt, p 185
  • 4. Eliav E, Kaldor U, Ishikawa Y (1995) Transition energies of mercury and ekamercury (element 112) by the relativistic coupled-cluster method. Phys Rev A 52:2765−2769
  • 5. Fricke B, Waber JT (1971) Theoretical predictions of the chemistry of superheavy elements. Continuation of the Periodic Table up to Z = 184. Act Rev 1:433−485
  • 6. Handbook of chemistry and physics (1978) 58th ed. CRS Press, Inc., Cleveland
  • 7. Łyczko K (2002) Chemistry of the noble gases. Wiad Chem 56;9-10:771−792 (in Polish)
  • 8. Oganessian YuT, Yeremin AV, Gulbekian GG (1999) Search for new isotopes of element 112 by irradiation of 238U with 48Ca. Eur Phys J A 5:63−68
  • 9. Oganessian YuT, Yeremin AV, Popeko AG et al. (1999) Synthesis of nuclei of the superheavy element 114 in reactions induced by 48Ca. Nature 400:242−245
  • 10. Pershina V (2002) Intermetallic compounds of element 112: the electronic structure and bonding of HgX and 112X (X = Pd, Ag and Au). In: GSI Scientific Report 2001. GSI, Darmstadt, p 186
  • 11. Pitzer KS (1975) Are elements 112, 114, and 118 relatively inert gases. J Chem Phys 63:1032−1033
  • 12. Pyykkö P (1988) Relativistic effects in structural chemistry. Chem Rev 88:563−594
  • 13. Siekierski S (1997) Ionic radii: effect of shell radius, cation charge and lone electron pair. Comments Inorg Chem 19:121−131
  • 14. Soverna S, Eichler R, Gäggeler HW et al. (2002) Model experiments for the chemical investigation of element 112. In: PSI Annual Report 2002. PSI, Villigen, p 3
  • 15. Stein L (1983) The chemistry of radon. Radiochim Acta 32:163−171
  • 16. Yakushev AB, Buklanov GV, Chelnokov ML et al. (2001) First attempt to chemically identify element 112. Radiochim Acta 89:743−746
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUJ5-0004-0025
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