Formation of phosphorus monoxide (PO) in the interstellar medium: insights from quantum-chemical and kinetic calculations
Juan Garc\'ia de la Concepci\'on, Cristina Puzzarini, Vincenzo Barone,, Izaskun Jim\'enez-Serra, Octavio Roncero

TL;DR
This study uses quantum-chemical and kinetic calculations to investigate the formation of phosphorus monoxide (PO) in the interstellar medium, revealing that the P + OH reaction is a key formation pathway.
Contribution
It provides the first detailed computational analysis of PO formation reactions, quantifying reaction rates and identifying the dominant formation mechanism in space.
Findings
P + OH reaction is a significant source of PO in the ISM.
Reaction rates follow Arrhenius behavior with temperature dependence.
Water is not a relevant source of PO due to energy barriers.
Abstract
In recent years, phosphorus monoxide (PO) -- an important molecule for prebiotic chemistry -- has been detected in star-forming regions and in the comet 67P/Churyumov-Gerasimenko. These studies have revealed that, in the interstellar medium, PO is systematically the most abundant P-bearing species, with abundances that are 1-3 times greater than those derived for phosphorus nitride (PN), the second most abundant P-containing molecule. The reason why PO is more abundant than PN remains still unclear. Experimental studies with phosphorus in the gas phase are not available, probably because of the difficulties in dealing with its compounds. Therefore, the reactivity of atomic phosphorus needs to be investigated using reliable computational tools. To this end, state-of-the-art quantum-chemical computations have been employed to evaluate accurate reaction rates and branching ratios for…
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