X-ray Absorption Edge Spectroscopy and Computational Studies on LCuO Species: Superoxide—Cu versus Peroxide—Cu Bonding.

The geometric and electronic structures of two mononuclear CuO complexes, [Cu(O){HB(3-Ad-5-Prpz)}] (1) and [Cu(O)(β-diketiminate)] (2), have been evaluated using Cu K- and L-edge X-ray absorption spectroscopy (XAS) studies in combination with valence bond configuration interaction (VBCI) simulations...

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 128; no. 25; pp. 8286 - 8297
Autores principales: Sarangi, Ritimukta, Aboelella, Nermeen, Fujisawa, Kiyoshi, Tolman, William B., Hedman, Britt, Hodgson, Keith O., Solomon, Edward I.
Formato: Artículo
Publicado: American Chemical Society 6/28/2006
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:The geometric and electronic structures of two mononuclear CuO complexes, [Cu(O){HB(3-Ad-5-Prpz)}] (1) and [Cu(O)(β-diketiminate)] (2), have been evaluated using Cu K- and L-edge X-ray absorption spectroscopy (XAS) studies in combination with valence bond configuration interaction (VBCI) simulations and spin-unrestricted broken symmetry density functional theory (DFT) calculations. Cu K- and L-edge XAS data indicate the Cu(II) and Cu(III) nature of 1 and 2, respectively. The total integrated intensity under the L-edges shows that the ψ*'s in 1 and 2 contain 20% and 28% Cu character, respectively, indicative of very covalent ground states in both complexes, although more so in 1. Two-state VBCI simulations also indicate that the ground state in 2 has more Cu (∣3d)) character. DFT calculations show that the ψ* in both complexes is dominated by O character, although the O character is higher in 1. It is shown that the ligand L plays an important role in modulating CuO bonding in these LCuO systems and tunes the ground states of 1 and 2 to have dominant Cu(II)-superoxide-like and Cu(III)-peroxide-like character, respectively. The contributions of ligand field (LF) and the charge on the absorbing atom in the molecule (Q) to L- and K-edge energy shifts are evaluated using DFT and time-dependent DFT calculations. It is found that LF makes a dominant contribution to the edge energy shift, while the effect of Q is minor. The charge on the Cu in the Cu(III) complex is found to be similar to that in Cu(II) complexes, which indicates a much stronger interaction with the ligand, leading to extensive charge transfer.