Publications by authors named "Lucas Aebersold"

Article Synopsis
  • The study reports the creation and analysis of a high-nuclearity Fe/O/arsinate cluster within the salt [FeO(OH)(OAsMe)(OCH)(HO)](NO), synthesized from a specific reaction involving iron, dimethylarsinic acid, and triethylamine in acetonitrile.
  • The unique structure comprises nine Fe butterfly units, featuring complex linking, resulting in a triangular design resembling a guitar pick, influenced by intra-Fe hydrogen bonding and bridging MeAsO groups.
  • Magnetic data suggest the cluster exhibits a ground state of S = 0 and strong antiferromagnetic interactions, with findings supported by various theoretical methods that examine spin dynamics.
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In this work, we assess the potential of the Green's function approximation to predict isotropic magnetic exchange couplings and to reproduce the standard broken-symmetry energy difference approach for transition metal complexes. To this end, we have selected a variety of heterodinuclear, homodinuclear, and polynuclear systems containing 3d transition metal centers and computed the couplings using both the Green's function and energy difference methods. The Green's function approach is shown to have mixed results for the cases tested.

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The multi-configuration electron-nuclear dynamics for open shell systems with a spin-unrestricted formalism is described. The mean fields are evaluated using second-order reduced density matrices for electronic and nuclear degrees of freedom. Applications to light-element diatomics including equilibrium geometries, electronic energies, dipole moments, and absorption spectra are presented.

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The importance of spin-orbit effects on the predictions of energetic properties of actinide compounds has been considered for 18 different density functionals, comparing the spin-orbit and non-spin-orbit ("standard") forms of density functional theory (DFT). A set of enthalpies of formation for 66 small actinide (Th-Am) compounds-the An66 set, for which experimental data are available-have been investigated. The set includes actinide halides, oxides, and oxohalides in the general form AnOX, where = 0-6, = 0-3, and X = F, Cl, Br, or I.

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The utility of 22 density functionals paired with relativistic effective core potentials (RECPs) for the prediction of thermodynamic properties was investigated for the Ln54 set of lanthanide-containing molecules. The Ln54 set includes lanthanide oxides, fluorides, and chlorides with the lanthanide formally in the +1, + 2, or +3 oxidation state. The density functionals were chosen to span the gamut of complexity from the local density approximation to double hybrids.

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