Colliding heavy nuclei take multiple identities on the path to fusion

Author:

Cook Kaitlin J.ORCID,Rafferty Dominic C.,Hinde David J.,Simpson Edward C.,Dasgupta Mahananda,Corradi Lorenzo,Evers Maurits,Fioretto Enrico,Jeung DongyunORCID,Lobanov NikolaiORCID,Luong Duc Huy,Mijatović TeaORCID,Montagnoli Giovanna,Stefanini Alberto M.,Szilner Suzana

Abstract

AbstractThe properties of superheavy elements probe extremes of physics and chemistry. They are synthesised at accelerator laboratories using nuclear fusion, where two atomic nuclei collide, stick together (capture), then with low probability evolve to a compact superheavy nucleus. The fundamental microscopic mechanisms controlling fusion are not fully understood, limiting predictive capability. Even capture, considered to be the simplest stage of fusion, is not matched by models. Here we show that collisions of 40Ca with 208Pb, experience an ‘explosion’ of mass and charge transfers between the nuclei before capture, with unexpectedly high probability and complexity. Ninety different partitions of the protons and neutrons between the projectile-like and target-like nuclei are observed. Since each is expected to have a different probability of fusion, the early stages of collisions may be crucial in superheavy element synthesis. Our interpretation challenges the current view of fusion, explains both the successes and failures of current capture models, and provides a framework for improved models.

Funder

Department of Education and Training | Australian Research Council

Hrvatska Zaklada za Znanost

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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