Emergence of High-Order Deformation in Rotating Transfermium Nuclei: A Microscopic Understanding.

Phys Rev Lett

State Key Laboratory of Nuclear Physics and Technology, School of Physics, Peking University, Beijing 100871, China.

Published: July 2024

AI Article Synopsis

  • The study explores the rotational properties of transfermium nuclei using advanced theoretical methods that account for pairing correlations and deformations in a comprehensive way.
  • The findings accurately reproduce the kinematic and dynamic moments of inertia for specific isotopes without any tuning of parameters, relying on a well-defined universal density functional.
  • Notably, the research reveals that octupole deformation plays a crucial role in the differing rotational behaviors of isotopes ^{252}No and ^{254}No, suggesting that only focusing on hexacontetrapole deformation could be misleading in understanding these nuclei.

Article Abstract

The rotational properties of the transfermium nuclei are investigated in the full deformation space by implementing a shell-model-like approach in the cranking covariant density functional theory on a three-dimensional lattice, where the pairing correlations, deformations, and moments of inertia are treated in a microscopic and self-consistent way. The kinematic and dynamic moments of inertia of the rotational bands observed in the transfermium nuclei ^{252}No, ^{254}No, ^{254}Rf, and ^{256}Rf are well reproduced without any adjustable parameters using a well-determined universal density functional. It is found for the first time that the emergence of the octupole deformation should be responsible for the significantly different rotational behavior observed in ^{252}No and ^{254}No. The present results provide a microscopic solution to the long-standing puzzle on the rotational behavior in No isotopes, and highlight the risk of investigating only the hexacontetrapole (β_{60}) deformation effects in rotating transfermium nuclei without considering the octupole deformation.

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http://dx.doi.org/10.1103/PhysRevLett.133.022501DOI Listing

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Emergence of High-Order Deformation in Rotating Transfermium Nuclei: A Microscopic Understanding.

Phys Rev Lett

July 2024

State Key Laboratory of Nuclear Physics and Technology, School of Physics, Peking University, Beijing 100871, China.

Article Synopsis
  • The study explores the rotational properties of transfermium nuclei using advanced theoretical methods that account for pairing correlations and deformations in a comprehensive way.
  • The findings accurately reproduce the kinematic and dynamic moments of inertia for specific isotopes without any tuning of parameters, relying on a well-defined universal density functional.
  • Notably, the research reveals that octupole deformation plays a crucial role in the differing rotational behaviors of isotopes ^{252}No and ^{254}No, suggesting that only focusing on hexacontetrapole deformation could be misleading in understanding these nuclei.
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