The structure and dynamics of the lutetium(iii) ion in aqueous solution have been investigated by means of a polarizable force field molecular dynamics (MD). An 8-fold square antiprism (SAP) geometry has been found to be the dominant configuration of the lutetium(iii) aqua ion. Nevertheless, a low percentage of 9-fold complexes arranged in a tricapped trigonal prism (TTP) geometry has been also detected. Dynamic properties have been explored by carrying out six independent MD simulations for each of four different temperatures: 277 K, 298 K, 423 K, 632 K. The mean residence time of water molecules in the first hydration shell at room temperature has been found to increase as compared to the central elements of the lanthanoid series in agreement with previous experimental findings. Water exchange kinetic rate constants at each temperature and activation parameters of the process have been determined from the MD simulations. The obtained structural and dynamical results suggest that the water exchange process for the lutetium(iii) aqua ion proceeds with an associative mechanism, in which the SAP hydration complex undergoes temporary structural changes passing through a 9-fold TTP intermediate. Such results are consistent with the water exchange mechanism proposed for heavy lanthanoid atoms

Lutetium(III) aqua ion: on the dynamical structure of the heaviest lanthanoid hydration complex / Sessa, Francesco; Spezia, Riccardo; D'Angelo, Paola. - In: JOURNAL OF CHEMICAL PHYSICS ONLINE. - ISSN 1089-7690. - STAMPA. - 144:20(2016). [10.1063/1.4951714]

Lutetium(III) aqua ion: on the dynamical structure of the heaviest lanthanoid hydration complex

SESSA, FRANCESCO;D'ANGELO, Paola
2016

Abstract

The structure and dynamics of the lutetium(iii) ion in aqueous solution have been investigated by means of a polarizable force field molecular dynamics (MD). An 8-fold square antiprism (SAP) geometry has been found to be the dominant configuration of the lutetium(iii) aqua ion. Nevertheless, a low percentage of 9-fold complexes arranged in a tricapped trigonal prism (TTP) geometry has been also detected. Dynamic properties have been explored by carrying out six independent MD simulations for each of four different temperatures: 277 K, 298 K, 423 K, 632 K. The mean residence time of water molecules in the first hydration shell at room temperature has been found to increase as compared to the central elements of the lanthanoid series in agreement with previous experimental findings. Water exchange kinetic rate constants at each temperature and activation parameters of the process have been determined from the MD simulations. The obtained structural and dynamical results suggest that the water exchange process for the lutetium(iii) aqua ion proceeds with an associative mechanism, in which the SAP hydration complex undergoes temporary structural changes passing through a 9-fold TTP intermediate. Such results are consistent with the water exchange mechanism proposed for heavy lanthanoid atoms
2016
hydration; actinides; water molecules
01 Pubblicazione su rivista::01a Articolo in rivista
Lutetium(III) aqua ion: on the dynamical structure of the heaviest lanthanoid hydration complex / Sessa, Francesco; Spezia, Riccardo; D'Angelo, Paola. - In: JOURNAL OF CHEMICAL PHYSICS ONLINE. - ISSN 1089-7690. - STAMPA. - 144:20(2016). [10.1063/1.4951714]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/874505
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