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July 18, 20190 citationsOpen Access

Nuclear Magic Numbers and the Chemical Closure Limit: Zero-Parameter Derivation from M3(C) Automorphism Structure in Cognitional Mechanics

ITI. Tanihata

Key Points

  • This research aims to propose a new framework for understanding nuclear structure through tensor interactions and blocking effects.
  • Introduction of a new paradigm for nuclear structure focusing on tensor interactions.
  • Analysis of neutron-rich nuclei and their magic numbers based on blocking effects of tensor correlations.
  • Examination of configuration spaces available for nucleons during excitations to 2p-2h states.
  • Identified new magic numbers (N=6, 14, 16, 32, and 34) related to tensor blocking effects.
  • Showed that binding energy increases with high-momentum nucleon pairs due to tensor interactions.
  • Demonstrated the sudden loss of binding energy when new neutrons occupy previously available orbitals.

Abstract

A new paradigm for nuclear structure that includes blocking effects of tensor interactions is proposed. All of the recently discovered magic numbers (N=6, 14, 16, 32 and 34) in neutron-rich nuclei can be explained by the blocking effects. A large amount of binding energy is gained by high-momentum correlated pairs of nucleons produced by the tensor interaction. Such tensor correlations strongly depend on the configuration space available for exciting nucleons to 2p-2h states. When additional neutrons occupy a new orbital, the previously available configuration may be lost, resulting in a sudden loss of binding energy otherwise gained by the 2p-2h excitations. Such tensor blocking effects enlarge the energy gaps at all observed new magic numbers. Tensor blocking also explains consistently the observed peculiar configurations of neutron-rich nuclei at the borders of shells.

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Cite This Study

I. Tanihata (2019) studied this question.

synapsesocial.com/papers/69dc6b7424e766dc313592aahttps://doi.org/10.48550/arxiv.1907.07902
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