Complexation reactions of ruthenium-nitrosyl complexes in HNO solution were investigated by density functional theory (DFT) calculations in order to predict the stability of Ru species in high-level radioactive liquid waste (HLLW) solution. The equilibrium structure of [Ru(NO)(NO)(HO)] obtained by DFT calculations reproduced the experimental Ru-ligand bond lengths and IR frequencies reported previously. Comparison of the Gibbs energies among the geometrical isomers for [Ru(NO)(NO) (HO) ] revealed that the complexation reactions of the ruthenium-nitrosyl complexes with NO proceed the NO coordination to the equatorial plane toward the Ru-NO axis. We also estimated Gibbs energy differences on the stepwise complexation reactions to succeed in reproducing the fraction of Ru-NO species in 6 M HNO solution, such as in HLLW, by considering the association energy between the Ru-NO species and the substituting ligands. Electron density analyses of the complexes indicated that the strength of the Ru-ligand coordination bonds depends on the stability of the Ru species and the Ru complex without NO at the axial position is more stable than that with NO , which might be attributed to the difference in the influence between HO and NO . Finally, we demonstrated the complexation kinetics in the reactions = 1 → = 2. The present study is expected to enable us to model the precise complexation reactions of platinum-group metals in HNO solution.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055096 | PMC |
http://dx.doi.org/10.1039/d0ra05042c | DOI Listing |
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