Comparing the effects of nuclear and electron spins on the formation of neutral hydrogen molecule
arXiv:2303.10413 · doi:10.1134/S1995080223080401
Abstract
We introduce the association-dissociation model of neutral hydrogen molecule, which is a finite-dimensional cavity quantum electrodynamics model of chemistry with two two-level artificial atoms on quantum dots placed in optical cavities, based on the Tavis-Cummings-Hubbard model. The motion of the nuclei can be represented in quantum form. Electron spin transition and spin-spin interaction between electron and nucleus are both considered. Consideration is also given to the effects of nuclear and electron spins on the formation of neutral hydrogen molecule.
9 pages, 5 figures. arXiv admin note: substantial text overlap with arXiv:2209.09607
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- Simulating and comparing the quantum and classical mechanical motion of two hydrogen atoms
- Quantum electrodynamic description of ionization of the neutral hydrogen molecule
- Studying the effect of phonon coherence and inflow on hydrogen bond formation in the cluster