Resonant states in $^{7}$H. I. Experimental studies of the $^2$H($^8$He,$^3$He) reaction
I.A. Muzalevskii, A.A. Bezbakh, E.Yu. Nikolskii, V. Chudoba, S.A., Krupko, S.G. Belogurov, D. Biare, A.S. Fomichev, E.M. Gazeeva, A.V. Gorshkov,, L.V. Grigorenko, G. Kaminski, O. Kiselev, D.A. Kostyleva, M.Yu. Kozlov, B., Mauyey, I. Mukha, Yu.L. Parfenova, W. Piatek, A.M. Quynh

TL;DR
This study provides experimental evidence for multiple resonant states in the neutron-rich nucleus $^{7}$H, clarifying its spectrum and proposing the nature of its low-lying states through transfer reaction analysis.
Contribution
The paper reports the discovery of two confirmed resonant states in $^{7}$H at 2.2 and 5.5 MeV, and suggests the existence of additional states, refining the understanding of $^{7}$H's spectrum.
Findings
Resonant states at 2.2 and 5.5 MeV in $^{7}$H confirmed.
Indications of states at 7.5 and 11.0 MeV in $^{7}$H spectrum.
The 5.5 MeV state is likely the $5/2^+$ member of a doublet.
Abstract
The extremely neutron-rich system H was studied in the direct H(He,He)H transfer reaction with a 26 AMeV secondary He beam [Bezbakh et al., Phys. Rev. Lett. 124 (2020) 022502]. The missing mass spectrum and center-of-mass (c.m.) angular distributions of H, as well as the momentum distribution of the H fragment in the H frame, were constructed. In addition to the investigation reported in Ref. [Bezbakh et al., Phys. Rev. Lett. 124 (2020) 022502], we carried out another experiment with the same beam but a modified setup, which was cross-checked by the study of the H(Be,HeLi reaction. A solid experimental evidence is provided that two resonant states of H are located in its spectrum at 2.2(5) and 5.5(3) MeV relative to the H+4 decay threshold. Also, there are indications that the resonant states at 7.5(3) and…
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