Abstract
Iodine oxide (IO) is an important tropospheric molecule. In the present paper, we mapped the potential energy surfaces (PESs) of the doubly degenerate IO(X2Π)-Ar van der Waals system using single- A nd double-excitation coupled cluster approaches with non-iterative perturbation treatment of triple excitations [RCCSD(T)] extrapolated to the complete basis set (CBS) limit. In addition to bent local minima, we identified a linear Ar-IO complex as a global minimum. Afterwards, we performed scattering calculations on these PESs, considering the non-zero spin-orbit contribution and the Renner-Teller effect. The integral cross-sections exhibit an oscillatory structure vs. the final rotational state, as already observed for the NO(X2Π)-Ar system. Moreover, computations reveal that the Ar-IO complex is stable toward dissociation into IO and Ar. Therefore, it can be found in the atmosphere and participates in iodine compound physical chemical processes occurring there.
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CITATION STYLE
Marzouk, S., Ajili, Y., Lique, F., Ben El Hadj Rhouma, M., Al Mogren, M. M., & Hochlaf, M. (2020). IO(X2Π)-Ar cluster:: Ab initio potential energy surface and dynamical computations. Physical Chemistry Chemical Physics, 22(2), 740–747. https://doi.org/10.1039/c9cp05310g
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