From Weak Binding to Resonances: Extrapolating Unbound Nuclei
ORAL · Invited
Abstract
In the rare isotope beam era, developing scalable ab initio approaches for the description of many-body resonances is critical to guide the exploration of the drip lines, understand the dynamics of exotic nuclei, and predict low-energy cross sections of reactions of astrophysical interest. While state-of-the-art methods can now routinely describe narrow few-body resonances, they tend to struggle when many nucleons are strongly coupled to the continuum of scattering states. In this talk, I will show how to overcome this problem by building scalable and efficient Gamow-state emulators using novel machine learning/artificial intelligence (ML/AI) techniques. This is achieved by leveraging the intimate mathematical connection between resonances and weakly bound states, allowing the prediction of resonant physics by training purely on bound state calculations. I will start by introducing the formalism, presenting proofs of principle in 6He and 6Be isotopes described as three-body systems, and finally show a path towards exotic nuclei at the edge of stability such as the five-proton emitter 9N.
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Publication: N. Yapa, K. Fossez, and S. König, Phys. Rev. C 107, 064316 (2023).<br>N. Yapa, S. König, and K. Fossez, Phys. Rev. C 111, 064318 (2025).
Presenters
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Nuwan Yapa
Florida State University
Authors
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Nuwan Yapa
Florida State University
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Kevin Fossez
Florida State University
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Sebastian Koenig
North Carolina State University