Nudged elastic band approach to nuclear fission pathways
Eric Flynn, Daniel Lay, Sylvester Agbemava, Pablo Giuliani, Kyle, Godbey, Witold Nazarewicz, and Jhilam Sadhukhan

TL;DR
This paper evaluates the nudged elastic band method for accurately determining nuclear fission pathways, showing it outperforms other techniques in efficiency and stability for complex potential energy surfaces.
Contribution
The study demonstrates the effectiveness of the NEB method in identifying fission pathways and critical points, improving upon existing approaches for large-scale nuclear fission calculations.
Findings
NEB efficiently finds exit points on the outer turning surface.
NEB accurately computes critical points on potential energy surfaces.
The method is suitable for large-scale fission studies of superheavy and neutron-rich nuclei.
Abstract
The nuclear fission process is a dramatic example of the large-amplitude collective motion in which the nucleus undergoes a series of shape changes before splitting into distinct fragments. This motion can be represented by a pathway in the many-dimensional space of collective coordinates. The collective action along the fission pathway determines the spontaneous fission half-lives as well as mass and charge distributions of fission fragments. We study the performance and precision of various methods to determine the minimum action and minimum-energy fission trajectories in the collective space. We apply the nudged elastic band method (NEB), grid-based methods, and Euler Lagrange approach to the collective action minimization in two and three dimensional collective spaces. The performance of various approaches to the fission pathway problem is assessed by studying the collective…
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Taxonomy
TopicsNuclear physics research studies · High-Energy Particle Collisions Research · High-pressure geophysics and materials
