Computational Modeling and Visualization of Quantum Wavefunctions in The Particle-in-a-Box and Hydrogen Atom

Authors

  • Aldwin Zalukhu Department of Physics, Faculty of Science and Technology, University of Jambi Author
  • Shella Garelita Department of Physics, Faculty of Science and Technology, University of Jambi Author
  • Alrizal Department of Physics, Faculty of Science and Technology, University of Jambi Author
  • Jesi Pebralia Department of Physics, Faculty of Science and Technology, University of Jambi Author
  • Dapfa Farrizo Altop Department of Physics, Faculty of Science and Technology, University of Jambi Author
  • Fairuz Athaya Zahran Tane Department of Physics, Faculty of Science and Technology, University of Jambi Author
  • Nada Oktaviani Department of Physics, Faculty of Science and Technology, University of Jambi Author

DOI:

https://doi.org/10.35895/rf.v6i2.84

Keywords:

Quantum, Physics, computational, Quantum Mechanics, Computational Physics, Hidrogen Atom

Abstract

This study models and visualizes quantum wavefunctions in two fundamental systems-namely the one-dimensional particle-in-a-box and the hydrogen atom-using a computational Python-based approach. The Schrödinger equation is solved analytically to obtain the wavefunctions and probability distributions, which are subsequently visualized in both two and three dimensions. For the particle-in-a-box system, the results demonstrate clear energy quantization, increasing numbers of nodes, and waveform evolution that aligns with theoretical predictions. In the hydrogen atom system, the modeling incorporates the radial and angular components of the wavefunction, producing realistic orbital representations such as 1s, 2p, 3p, and 3d according to the chosen quantum numbers n, l, and m. The resulting visualizations clearly illustrate the relationship between quantum numbers, nodal structure, and electron probability distributions. Overall, the study shows that computational modeling effectively bridges mathematical solutions and physical interpretation, providing a powerful tool for enhancing conceptual understanding in quantum mechanics education.

References

Al-Masaeed, M. G., Rabei, E. M., & Al-Jamel, A. (2024). Analytical Solution of Conformable Schrödinger Wave Equation with Coulomb Potential. Progress in Fractional Differentiation and Applications, 10(1), 137–153. https://doi.org/10.18576/pfda/100113.

Azizi, M. (2021). Atomic orbital search: A novel metaheuristic algorithm. Applied Mathematical Modelling, 93, 657–683. https://doi.org/10.1016/j.apm.2020.12.021

Dalal, M. 2018. A Textbook of Physical Chemistry volume 1. Haryana: Dalal Institute.

Galler, A., Canfield, J., & Freericks, J. K. (2021). Schrödinger’s original quantum-mechanical solution for hydrogen. European Journal of Physics, 42(3). https://doi.org/10.1088/1361-6404/abb9ff

Griffiths, D. J. (1994). Introduction to quantum mechanics. Upper Saddle River: Prentice hall.

Griffiths, D. J., & Schroeter, D. F. (2018). Introduction to Quantum Mechanics. In Introduction to Quantum Mechanics. Cambridge University Press. https://doi.org/10.1017/9781316995433.

House , J. E. (2017). Fundamentals Of Quantum Mechanics Third Edition. London: Academic Press.

Ling, S. J., Sanny, J., & Moebs, W. (2021). University Physics Volume 3. Texas: Openstax.

Sathongpaen, P., Jindanate, S., & Amthong, A. (2024). Revisiting the Two-Dimensional Hydrogen Atom: Azimuthal Wavefunctions for Illustrating s, p, d, and f Orbitals. Symmetry, 16(9). https://doi.org/10.3390/sym16091163

Singh, N. B. (2024). Quantum Formula Handboook: Essential Equation Made Simple.

Supriadi, B., Nuraini, L., Maulani, A. S. R., Damayanti, D. D., Sugihartin, A. F., & Baihaqi, M. I. (2020). Complete solutions of particle in three dimensional box with variations in main quantum number. Journal of Physics: Conference Series, 1538(1). https://doi.org/10.1088/1742-6596/1538/1/012038.

Zettili, Nouredine. (2009). Quantum mechanics : concepts and applications. Wiley.

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Published

2026-07-31

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