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One-dimension Periodic Potentials in Schr\"odinger Equation Solved by the Finite Difference Method

Quantum Physics 2024-11-01 v1

Abstract

The one-dimensional Kronig-Penney potential in the Schr\"{o}dinger equation, a standard periodic potential in quantum mechanics textbooks known for generating band structures, is solved by using the finite difference method with periodic boundary conditions. This method significantly improves the eigenvalue accuracy compared to existing approaches such as the filter method. The effects of the width and height of the Kronig-Penney potential on the eigenvalues and wave functions are then analyzed. As the potential height increases, the variation of eigenvalues with the wave vector slows down. Additionally, for higher-order band structures, the magnitude of the eigenvalue significantly decreases with increasing potential width. Finally, the Dirac comb potential, a periodic δ\delta potential, is examined using the present framework. This potential corresponds to the Kronig-Penney potential's width and height approaching zero and infinity, respectively. The numerical results obtained by the finite difference method for the Dirac comb potential are also perfectly consistent with the analytical solution.

Keywords

Cite

@article{arxiv.2410.23673,
  title  = {One-dimension Periodic Potentials in Schr\"odinger Equation Solved by the Finite Difference Method},
  author = {Lingfeng Li and Jinniu Hu and Ying Zhang},
  journal= {arXiv preprint arXiv:2410.23673},
  year   = {2024}
}

Comments

17 pages, 11 figures, 2 tables, accepted by European Journal of Physics

R2 v1 2026-06-28T19:42:27.614Z