Measurement of $\rm ^4_{\Lambda}H$ and $\rm ^4_{\Lambda}He$ binding energy in Au+Au collisions at $\sqrt{s_\mathrm{NN}}$ = 3 GeV
STAR Collaboration: M. S. Abdallah, B. E. Aboona, J. Adam, L., Adamczyk, J. R. Adams, J. K. Adkins, I. Aggarwal, M. M. Aggarwal, Z. Ahammed,, D. M. Anderson, E. C. Aschenauer, M. U. Ashraf, J. Atchison, V. Bairathi, W., Baker, J. G. Ball Cap, K. Barish, A. Behera, R. Bellwied

TL;DR
This study measures the binding energies of hypernuclei $ m ^4_{\Lambda}H$ and $ m ^4_{\Lambda}He$ in heavy-ion collisions to investigate charge symmetry breaking effects, providing new experimental data and a novel method for such studies.
Contribution
It provides the first measurements of $ m ^4_{\Lambda}H$ and $ m ^4_{\Lambda}He$ binding energies in Au+Au collisions at 3 GeV, addressing charge symmetry breaking in hypernuclei.
Findings
Measured $ m ^4_{\Lambda}H$ and $ m ^4_{\Lambda}He$ binding energies with uncertainties.
Found the $ m \Lambda$ binding-energy difference to be close to zero within uncertainties.
Confirmed consistency with theoretical predictions of charge symmetry breaking effects.
Abstract
Measurements of mass and binding energy of and in Au+Au collisions at GeV are presented, with an aim to address the charge symmetry breaking (CSB) problem in hypernuclei systems with atomic number A = 4. The binding energies are measured to be MeV and MeV for and , respectively. The measured binding-energy difference is MeV for ground states. Combined with the -ray transition energies, the binding-energy difference for excited states is MeV, which is negative and comparable to the value of the ground states within uncertainties. These new measurements on the binding-energy…
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