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Electron affinities of biscyclopentadienyl and phospholyl uranium(IV) borohydride complexes: Experimental and DFT studies
Authors:Aziz Elkechai  Abdou Boucekkine  Lotfi Belkhiri  Didier Hauchard  Caroline Clappe  Michel Ephritikhine
Institution:1. Laboratoire de physique et chimie quantique, faculté des sciences, université Mouloud Mammeri de Tizi-Ouzou, 15000 Tizi-Ouzou, Algeria;2. UMR CNRS 6226, laboratoire sciences chimiques de Rennes, université de Rennes 1, campus de Beaulieu, 35042 Rennes cedex, France;3. LACMOM, département de chimie, université Mentouri, 25000 Constantine, Algeria;4. École nationale supérieure de chimie de Rennes, CNRS, UMR 6226, avenue du Général-Leclerc, CS 50837, 35708 Rennes cedex, France;5. Laboratoire de chimie et génie des procédés, École centrale de Paris, Grande Voie des Vignes, 92295 Châtenay-Malabry cedex, France;6. CEA, IRAMIS, UMR 3299 CEA/CNRS SIS2 M, CEA/Saclay, 91191 Gif-sur-Yvette, France
Abstract:Electron affinities (EAs) of a series of biscyclopentadienyl and phospholyl uranium(IV) complexes L2U(BH4)2 L2 = Cp2, (tmp)2, (tBuCp)2, (Cp*)(tmp) and Cp*2] related to the U(III)/U(IV) redox system were calculated using relativistic Density Functional Theory (DFT) based methods coupled with the Conductor-like Screening Model for Real Solvents (COSMO-RS) approach. Electrochemical measurements of half-wave potentials in solution (tetrahydrofuran THF) were carried out for all these compounds under the same rigorous conditions. A good correlation (r2 = 0.99) is obtained between the calculated EA values, at the ZORA/BP86/TZ2P level, and the half-wave reduction potentials measured by electrochemistry. The investigations bring to light the importance of spin-orbit coupling and solvent effect and the use of a large basis set in order to achieve such a good agreement between theory and experiment. The study confirms the instability of the Cp2U(BH4)2 complex during the reduction process. The influence of the substituted aromatic ligand L2, namely their electron donating ability, on EA was studied. The role of involved orbitals (singled occupied molecular orbital –SOMO– of anionic species or lowest unoccupied molecular orbital –LUMO– of neutral species) in the redox process was revealed.
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