Theoretical Investigation of Paramagnetic NMR Shifts in Transition Metal Acetylacetonato Complexes: Analysis of Signs, Magnitudes, and the Role of the Covalency of Ligand-Metal Bonding

被引:53
作者
Pritchard, Ben [1 ]
Autschbach, Jochen [1 ]
机构
[1] SUNY Buffalo, Dept Chem, Buffalo, NY 14260 USA
关键词
DENSITY-FUNCTIONAL THEORY; ORDER REGULAR APPROXIMATION; NUCLEAR-MAGNETIC-RESONANCE; CHROMIUM(III) COMPLEXES; SPECTRA; TENSORS; ENERGY; COMPUTATIONS; MOLECULES; H-1;
D O I
10.1021/ic300868v
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Ligand chemical shifts are calculated and analyzed for three paramagnetic transition metal tris-acetylacetonato (acac) complexes, namely high-spin Fe(III) and Cr(III), and low-spin Ru(III), using scalar relativistic density functional theory (DFT). The signs and magnitudes of the paramagnetic NMR ligand chemical shifts are directly related to the extent of covalent acac oxygen-to-metal sigma donation involving unoccupied metal valence d(sigma) acceptor orbitals. The role of delocalization of metal-centered spin density over the ligand atoms plays a minor secondary role. Of particular interest is the origin of the sign and magnitude of the methyl carbon chemical shift in the acac ligands, and the role played by the DFT delocalization error when calculating such shifts. It is found that the alpha versus beta spin balance of oxygen sigma donation to metal valence d acceptor orbitals is responsible for the sign and the magnitude of the ligand methyl carbon chemical shift. A problematic case is the methyl carbon shift of Fe(acac)(3). Most functionals produce shifts in excess of 1400 ppm, whereas the experimental shift is approximately 279 ppm. Range-separated hybrid functionals that are optimally tuned for Fe(acac)(3) based on DFT energetic criteria predict a lower limit of about 2000 ppm for the methyl carbon shift of the high-spin electronic configuration. Since the experimental value is based on a very strongly broadened signal it is possibly unreliable.
引用
收藏
页码:8340 / 8351
页数:12
相关论文
共 62 条
[1]   Scalar Relativistic Computations and Localized Orbital Analyses of Nuclear Hyperfine Coupling and Paramagnetic NMR Chemical Shifts [J].
Aquino, Fredy ;
Pritchard, Ben ;
Autschbach, Jochen .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2012, 8 (02) :598-609
[2]   Scalar Relativistic Computations of Nuclear Magnetic Shielding and g-Shifts with the Zeroth-Order Regular Approximation and Range-Separated Hybrid Density Functionals [J].
Aquino, Fredy ;
Govind, Niranjan ;
Autschbach, Jochen .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2011, 7 (10) :3278-3292
[3]   Electric Field Gradients Calculated from Two-Component Hybrid Density Functional Theory Including Spin-Orbit Coupling [J].
Aquino, Fredy ;
Govind, Niranjan ;
Autschbach, Jochen .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2010, 6 (09) :2669-2686
[4]   Double perturbation theory: a powerful tool in computational coordination chemistry [J].
Autschbach, J ;
Ziegler, T .
COORDINATION CHEMISTRY REVIEWS, 2003, 238 :83-126
[5]  
Autschbach J., 2009, CHEMPHYSCHEM, V10, P1
[6]   Analyzing Pt chemical shifts calculated from relativistic density functional theory using localized orbitals: The role of Pt 5d lone pairs [J].
Autschbach, Jochen ;
Zheng, Shaohui .
MAGNETIC RESONANCE IN CHEMISTRY, 2008, 46 (S45-S55) :S45-S55
[7]   Calculation of Hyperfine Tensors and Paramagnetic NMR Shifts Using the Relativistic Zeroth-Order Regular Approximation and Density Functional Theory [J].
Autschbach, Jochen ;
Patchkovskii, Serguei ;
Pritchard, Ben .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2011, 7 (07) :2175-2188
[8]   Calculation of molecular g-tensors using the zeroth-order regular approximation and density functional theory: expectation value versus linear response approaches [J].
Autschbach, Jochen ;
Pritchard, Benjamin .
THEORETICAL CHEMISTRY ACCOUNTS, 2011, 129 (3-5) :453-466
[9]  
Autschbach J, 2010, CHALL ADV COMPUT CHE, V10, P521, DOI 10.1007/978-1-4020-9975-5_12
[10]   Analysis of Electric Field Gradient Tensors at Quadrupolar Nuclei in Common Structural Motifs [J].
Autschbach, Jochen ;
Zheng, Shaohui ;
Schurko, Robert W. .
CONCEPTS IN MAGNETIC RESONANCE PART A, 2010, 36A (02) :84-126