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High-precision mass measurement of doubly magic $^{208}$Pb

Authors :
Kromer, Kathrin
Lyu, Chunhai
Door, Menno
Filianin, Pavel
Harman, Zoltán
Herkenhoff, Jost
Huang, Wenjia
Keitel, Christoph H.
Lange, Daniel
Novikov, Yuri N.
Schweiger, Christoph
Eliseev, Sergey
Blaum, Klaus
Source :
Eur. Phys. J. A 58, 202 (2022)
Publication Year :
2022

Abstract

The absolute atomic mass of $^{208}$Pb has been determined with a fractional uncertainty of $7\times 10^{-11}$ by measuring the cyclotron-frequency ratio $R$ of $^{208}$Pb$^{41+}$ to $^{132}$Xe$^{26+}$ with the high-precision Penning-trap mass spectrometer Pentatrap and computing the binding energies $E_{\text{Pb}}$ and $E_{\text{Xe}}$ of the missing 41 and 26 atomic electrons, respectively, with the ab initio fully relativistic multi-configuration Dirac-Hartree-Fock (MCDHF) method. $R$ has been measured with a relative precision of $9\times 10^{-12}$. $E_{\text{Pb}}$ and $E_{\text{Xe}}$ have been computed with an uncertainty of 9.1 eV and 2.1 eV, respectively, yielding $207.976\,650\,571(14)$ u (u$=9.314\,941\,024\,2(28)\times 10^{8}$ eV/c$^2$) for the $^{208}$Pb neutral atomic mass. This result agrees within $1.2\sigma$ with that from the Atomic-Mass Evaluation (AME) 2020, while improving the precision by almost two orders of magnitude. The new mass value directly improves the mass precision of 14 nuclides in the region of Z=81-84 and is the most precise mass value with A>200. Thus, the measurement establishes a new region of reference mass values which can be used e.g. for precision mass determination of transuranium nuclides, including the superheavies.<br />Comment: 8 pages, 4 figures, to be published in EPJA

Details

Database :
arXiv
Journal :
Eur. Phys. J. A 58, 202 (2022)
Publication Type :
Report
Accession number :
edsarx.2210.11602
Document Type :
Working Paper
Full Text :
https://doi.org/10.1140/epja/s10050-022-00860-1