Effects of Central Metal Ions on Vibrational Circular Dichroism Spectra of Tris-(β-diketonato)metal(III) Complexes
- 11 July 2007
- journal article
- Published by American Chemical Society (ACS) in Inorganic Chemistry
- Vol. 46 (16) , 6755-6766
- https://doi.org/10.1021/ic070300i
Abstract
Vibrational circular dichroism (VCD) spectra of a series of [M(III)(acac)3] (acac = acetylacetonato; M = Cr, Co, Ru, Rh, Ir, and Al) and [M(III)(acac)2(dbm)] (dbm = dibenzoylmethanato; M = Cr, Co, and Ru) have been investigated experimentally and/or theoretically in order to see the effect of the central metal ion on the vibrational dynamics of ligands. The optical antipodes give the mirror-imaged spectra in the region of 1700-1000 cm(-1). The remarkable effect of the central metal ion is observed experimentally on the VCD peaks due to C-O stretches (1500-1300 cm(-1)) for both [M(III)(acac)3] and [M(III)(acac)2(dbm)]. In the case of Delta-[M(III)(acac)3], for example, the order of frequency of two C-O stretches (E and A2 symmetries) is dependent on the kind of a central metal ion as follows: E (-) > A2 (+) for M = Co, Rh, and Ir, while A2 (+) > E (-) for M = Cr and Ru. In the case of Delta-[M(III)(acac)2(dbm)], the order of frequency of three C-O stretches (A, B, and B symmetries) is as follows: A (-) > B (+) > B (+) for Co(III), B (+) > A (-) > B (-) for Cr(III), and A (-) > B (+) > B (-) for Ru(III). These results imply that the energy levels of C-O stretches are delicately affected by the kind of central metal ion. Since such detailed information is not obtained from the IR spectra alone, the VCD spectrum can probe the effect of the central metal ion on interligand cooperative vibration modes.Keywords
This publication has 104 references indexed in Scilit:
- Novel Configurational Structures of Sodium Tetrakis(3-heptafluorobutylryl-(+)-camphorato) Ln(III) Complexes with a Trapped Na+ by Na+···FC Interactions in the Solid State and in SolutionInorganic Chemistry, 2006
- Photomodulation of a Chiral Nematic Liquid Crystal by the Use of a Photoresponsive Ruthenium(III) ComplexChemistry of Materials, 2006
- On the Origin of Optical Activity in Tris-diamine Complexes of Co(III) and Rh(III): A Simple Model Based on Time-Dependent Density Function TheoryJournal of the American Chemical Society, 2004
- Calculated and Experimental Geometries and Infrared Spectra of Metal Tris-Acetylacetonates: Vibrational Spectroscopy as a Probe of Molecular Structure for Ionic Complexes. Part IThe Journal of Physical Chemistry A, 2000
- NMR Spectroscopic Studies on Interactions of Tripositive Ions of Cobalt(III) and Chromium(III) Complexes in Micellar SolutionsThe Journal of Physical Chemistry B, 1997
- Extremely high stereoselectivity of novel helical ruthenium(II) complexes for photoinduced reduction of racemic-[Co(acac)3] (Hacacpentane-2,4-dione)Journal of Photochemistry and Photobiology A: Chemistry, 1996
- Ab Initio Calculation of Vibrational Circular Dichroism Spectra Using Gauge-Invariant Atomic OrbitalsThe Journal of Physical Chemistry, 1995
- Optical Resolution and Asymmetric Syntheses by use of Adsorption on Clay MineralsJournal of Coordination Chemistry, 1987
- Vibrational circular dichroism in transition-metal complexes. 2. Ion association, ring conformation, and ring currents of ethylenediamine ligandsJournal of the American Chemical Society, 1986
- Theory of vibrational circular dichroismThe Journal of Physical Chemistry, 1985