Global Minima of the Thomson Problem in a Disk: A Molecular Dynamics Approach with Fixed Border Charges
Georgiy K. Lavrov, Eduard G. Nikonov
Abstract
We report improved global-minimum configurations for the classical Thomson problem of N=60, 61, 92, and 99 repulsive Coulomb charges confined to a disk. By combining the quenched molecular dynamics (QMD) method with the fixed-border heuristic introduced by Amore and Zarate, we systematically obtain configurations with energies EQMD(60)=2159.3584240930, EQMD(61)=2237.19264190, EQMD(92)=5358.35353314, and EQMD(99)=6254.83029083, which improve upon the previously best-known values. For N=60, the Voronoi diagram of our configuration differs from the one reported earlier. The symmetries for N=61 (C2) and N=99 (D1) are confirmed and are consistent with the known symmetry patterns for these configurations. For N=92, whereas the previously reported Voronoi diagram has lower symmetry, our solution exhibits a clear D1 (axial) symmetry of defects. The results are highly reproducible across multiple independent runs, providing strong evidence that these configurations are robust global-minimum candidates.
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