SPEED OF DIATOMIC MOLECULES IN SHIFTED TIETZ-WEI POTENTIAL
Keywords:
speed of diatomic molecules, eigen energies, SUSYQM, Tietz-Hua potential, Shifted Tietz-Wei potentialAbstract
In this work, the shape invariant formalism of SUSYQM is employed in the derivation of approximate equation of bound state energy eigenvalues of the shifted Tietz-Wei potential (STWP). A Pekeris-type approximation model is used to eliminate the centrifugal term of the Schrödinger equation. The expression of bound state energy eigenvalues is used to obtain equation of speed of the system based on the Hellmann-Feynman theorem. Numerical data of bound state energy eigenvalues and speed of two diatomic molecules including O2 (X 3Σg-) and NO (X2 Πf) are obtained. The calculated energies are in excellent agreement with available literature data of
the diatomic molecules. The results also show that the speed of the examined diatomic molecules increases with increase in vibrational quantum number and decreases with increasing rotational quantum number.
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