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Exact calculations sharpen view of atomic nuclei

Exact calculations sharpen view of atomic nuclei

phys.org 25.08.2026 18:40 8 views
Every high-energy nuclear collision leaves behind a trail of clues about the structure of atomic nuclei. Deciphering those clues, however, depends on the accuracy of the underlying theory. Physicists at Osaka Metropolita

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Every high-energy nuclear collision leaves behind a trail of clues about the structure of atomic nuclei. Deciphering those clues, however, depends on the accuracy of the underlying theory.

Physicists at Osaka Metropolitan University have now performed a full calculation within Glauber theory, a cornerstone framework for describing high-energy nuclear collisions. By overcoming a computational challenge that has long forced researchers to rely on approximations to reduce computational demands, the team has shown that its full calculation can accurately reproduce experimental data and provide a reliable framework for predicting the outcomes of future experiments involving ordinary and exotic nuclei. The study was published in Physical Review Letters on May 18 and Physical Review C on June 1.

Physical Review Letters provides a brief overview of the main findings, while Physical Review C contains the complete paper with additional details, results and analysis. Atomic nuclei are too small, and many too short-lived, to observe directly, even with the most powerful microscopes. So, to probe nuclear structure, physicists accelerate one nucleus toward another at high speed and analyze how the particles scatter after the collision.

By comparing the observed scattering pattern with theoretical models, scientists can infer otherwise invisible properties, such as a nucleus' size and density. Accurately modeling these collisions, however, is far from simple. "The concept known as Glauber theory has long been used to study what happens when atomic nuclei collide at high speeds," Wataru Horiuchi, associate professor at Osaka Metropolitan University's Graduate School of Science and lead author of the study, said.

"However, because the calculations are highly complex, the theory has often been studied using approximations." Glauber theory describes a nuclear collision as a series of interactions between the individual protons and neutrons in the colliding nuclei. In principle, all possible multiple-scattering processes must be included in the calculation; however, the sheer number of possible interactions makes the full calculation challenging. To overcome this obstacle, the team combined realistic quantum-mechanical models of nuclear structure with large-scale Monte Carlo calculations.

For collisions involving protons, helium nuclei and carbon nuclei, their approach accounted for all orders of the multiple-scattering processes predicted by Glauber theory, rather than relying on the simplifying approximations traditionally used to make the calculations manageable. The results closely matched available experimental data, including recent high-precision measurements of carbon-12 collisions. This agreement demonstrates that the full Glauber calculation can accurately describe the observed behavior of high-energy nuclear collisions.

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