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Lifetime of first excited state in 139La and the role of core-excitation on L-forbidden M1 transition

  • Zhi Xuan Wang
  • , Guang Xin Zhang*
  • , Wei Jiang
  • , Meng Lan Liu
  • , Cen Xi Yuan
  • , Bo Shuai Cai
  • , Chong Qi
  • , Hong Yi Wu
  • , Zhi Huan Li
  • , Yong Hao Chen
  • , Rui Rui Fan
  • , Kang Sun
  • , Wei Wang
  • , Jun Su
  • , Long Zhu
  • , Yue Huan Wei
  • , Yu Mei Zhang
  • , Wei Hua
  • , Bo Mei
  • , Xiao Fang
  • Yi Nu Zhang, Chen Chen Guo, Sheng Li Chen, Xiao Peng Zhou
*Corresponding author for this work
  • Sun Yat-Sen University
  • Spallation Neutron Source Science Center
  • KTH Royal Institute of Technology
  • China National Nuclear Corporation

Research output: Contribution to journalArticlepeer-review

Abstract

This study determined the lifetime of the first excited state (5/21+) in 139La via β–γ time-difference measurement using a LaBr3 + plastic scintillator array. This state is populated following the decay of 139Ba produced in the 138Ba(n,γ) reaction. Compared with previous experiments using only stilbene/plastic crystals, this experiment separates the background contribution in the γ-ray spectrum owing to the high energy resolution of LaBr3. The L-forbidden M1 transition strength, B(M1, 5/21+→7/21+), in 139La was measured and compared with detailed large-scale shell model calculations, with a special focus on the core-excitation effect. The results showed the importance of both proton and neutron core-excitations in explaining the M1 transition strength. Meanwhile, the effective g-factor for the tensor term of the M1 operator was smaller than the previously reported value in this region or around 208Pb.

Original languageEnglish
Article number179
JournalNuclear Science and Techniques
Volume36
Issue number10
DOIs
StatePublished - Oct 2025

Keywords

  • Effective g-factor
  • Fast-timing measurement
  • L-forbidden M1 transition
  • LaBr

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