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$\Lambda^{\ast}(1405)$-matter: stable or unstable?
- Source :
- Phys. Letters B 785 (2018) 90-94
- Publication Year :
- 2018
-
Abstract
- A recent suggestion [PLB 774 (2017) 522] that purely-$\Lambda^{\ast}(1405)$ nuclei provide the absolute minimum energy in charge-neutral baryon matter for baryon-number $A\gtrsim 8$, is tested within RMF calculations. A broad range of $\Lambda^{\ast}$ interaction strengths, commensurate with $(\bar K \bar K NN)_{I=0}$ binding energy assumed to be of order 100 MeV, is scanned. It is found that the binding energy per $\Lambda^{\ast}$, $B/A$, saturates for $A\gtrsim 120$ with values of $B/A$ considerably below 100 MeV, implying that $\Lambda^{\ast}(1405)$ matter is highly unstable against strong decay to $\Lambda$ and $\Sigma$ hyperon aggregates. The central density of $\Lambda^{\ast}$ matter is found to saturate as well, at roughly twice nuclear matter density. Moreover, it is shown that the underlying very strong $\bar K N$ potentials, fitted for isospin $I=0$ to the mass and width values of $\Lambda^{\ast}(1405)$, fail to reproduce values of single-nucleon absorption fractions deduced across the periodic table from $K^-$ capture-at-rest bubble chamber experiments.<br />Comment: v2 -- slightly added discussion, version accepted for publication in Phys. Lett. B
- Subjects :
- Nuclear Theory
High Energy Physics - Phenomenology
Nuclear Experiment
Subjects
Details
- Database :
- arXiv
- Journal :
- Phys. Letters B 785 (2018) 90-94
- Publication Type :
- Report
- Accession number :
- edsarx.1805.11368
- Document Type :
- Working Paper
- Full Text :
- https://doi.org/10.1016/j.physletb.2018.08.031