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      Quantification of f-element covalency through analysis of the electron density: insights from simulation

      Chemical Communications
      Royal Society of Chemistry (RSC)

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          Abstract

          Analysis of simulated electron densities provides quantitative, unambiguous, empirically verifiable interpretations of bonding in complexes of the f-elements.

          Abstract

          The electronic structure of f-element compounds is complex due to a combination of relativistic effects, strong electron correlation and weak crystal field environments. However, a quantitative understanding of bonding in these compounds is becoming increasingly technologically relevant. Recently, bonding interpretations based on analyses of the physically observable electronic density have gained popularity and, in this Feature Article, the utility of such density-based approaches is demonstrated. Application of Bader's Quantum Theory of Atoms in Molecules (QTAIM) is shown to elucidate many properties including bonding trends, orbital overlap and energy degeneracy-driven covalency, oxidation state identification and bond stability, demonstrating the increasingly important role that simulation and analysis play in the area of f-element bond characterisation.

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          A simple measure of electron localization in atomic and molecular systems

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            Application of the pople-santry-segal CNDO method to the cyclopropylcarbinyl and cyclobutyl cation and to bicyclobutane

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              Lanthanide single-molecule magnets.

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                Author and article information

                Journal
                CHCOFS
                Chemical Communications
                Chem. Commun.
                Royal Society of Chemistry (RSC)
                1359-7345
                1364-548X
                2017
                2017
                : 53
                : 50
                : 6685-6695
                Article
                10.1039/C7CC00962C
                ad444abe-f77b-415d-9418-4a2abbd451f3
                © 2017
                History

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