Density-induced suppression of the alpha-particle condensate in nuclear matter and the structure of alpha cluster states in nuclei
Y. Funaki, H. Horiuchi, G. R\"opke, P. Schuck, A. Tohsaki, T. Yamada

TL;DR
This paper investigates how increasing density suppresses alpha-particle condensates in nuclear matter and explores the structure of alpha cluster states in nuclei, revealing that condensates diminish near saturation density.
Contribution
It introduces a model combining alpha-matter and antisymmetrized wave functions to analyze density effects on alpha condensates and compares with experimental data.
Findings
Condensate fraction vanishes near saturation density.
Medium effects further reduce alpha particle internal states.
Enhancement of S-state wave functions decreases with increasing density.
Abstract
At low densities, with decreasing temperatures, in symmetric nuclear matter alpha-particles are formed, which eventually give raise to a quantum condensate with four-nucleon alpha-like correlations (quartetting). Starting with a model of alpha-matter, where undistorted alpha particles interact via an effective interaction such as the Ali-Bodmer potential, the suppression of the condensate fraction at zero temperature with increasing density is considered. Using a Jastrow-Feenberg approach, it is found that the condensate fraction vanishes near saturation density. Additionally, the modification of the internal state of the alpha particle due to medium effects will further reduce the condensate. In finite systems, an enhancement of the S state wave function of the c.o.m. orbital of alpha particle motion is considered as the correspondence to the condensate. Wave functions have been…
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