Bonding analysis using localized relativistic orbitals:: Water, the ultrarelativistic case and the heavy homologues H2X (X=Te, Po, eka-Po)

被引:38
作者
Dubillard, S
Rota, JB
Saue, T
Faegri, K
机构
[1] Univ Strasbourg, Inst Chim, CNRS, UMR 7177, F-67000 Strasbourg, France
[2] Univ Oslo, Dept Chem, N-0315 Oslo, Norway
关键词
D O I
10.1063/1.2187001
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We report the implementation of Pipek-Mezey [J. Chem. Phys. 90, 4916 (1989)] localization of molecular orbitals in the framework of a four-component relativistic molecular electronic structure theory. We have used an exponential parametrization of orbital rotations which allows the use of unconstrained optimization techniques. We demonstrate the strong basis set dependence of the Pipek-Mezey localization criterion and how it can be eliminated. We have employed localization in conjunction with projection analysis to study the bonding in the water molecule and its heavy homologues. We demonstrate that in localized orbitals the repulsion between hydrogens in the water molecule is dominated by electrostatic rather than exchange interactions and that freezing the oxygen 2s orbital blocks polarization of this orbital rather than hybridization. We also point out that the bond angle of the water molecule cannot be rationalized from the potential energy alone due to the force term of the molecular virial theorem that comes into play at nonequilibrium geometries and which turns out to be crucial in order to correctly reproduce the minimum of the total energy surface. In order to rapidly assess the possible relativistic effects we have carried out the geometry optimizations of the water molecule at various reduced speed of light with and without spin-orbit interaction. At intermediate speeds, the bond angle is reduced to around 90 degrees, as is known experimentally for H2S and heavier homologues, although our model of ultrarelativistic water by construction does not allow any contribution from d orbitals to bonding. At low speeds of light the water molecule becomes linear which is in apparent agreement with the valence shell electron pair repulsion (VSEPR) model since the oxygen 2s(1/2) and 2p(1/2) orbitals both become chemically inert. However, we show that linearity is brought about by the relativistic stabilization of the (n+1)s orbital, the same mechanism that leads to an electron affinity for eka-radon. Actual calculations on the series H2X (X=Te, Po, eka-Po) show the spin-orbit effects for the heavier species that can be rationalized by the interplay between SO-induced bond lengthening and charge transfer. Finally, we demonstrate that although both the VSEPR and the more recent ligand close packing model are presented as orbital-free models, they are sensitive to orbital input. For the series H2X (X=O, S, Se, Te) the ligand radius of the hydrogen can be obtained from the covalent radius of the central atom by the simple relation r(lig)(H)=0.67r(cov)(X)+27 (in picometers). (c) 2006 American Institute of Physics.
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页数:14
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共 82 条
[1]   COMPARISON OF GILLESPIE AND PAULING MODELS [J].
AHLRICHS, R .
CHEMIE IN UNSERER ZEIT, 1980, 14 (01) :18-24
[2]  
[Anonymous], 1979, COULSONS VALENCE
[3]   Spin-orbit and relativistic effects on structures and stabilities of group 17 fluorides EF3 (E = I, At, and element 117):: Relativity induced stability for the D3h structure of (117)F3 [J].
Bae, C ;
Han, YK ;
Lee, YS .
JOURNAL OF PHYSICAL CHEMISTRY A, 2003, 107 (06) :852-858
[4]   DENSITY-FUNCTIONAL THERMOCHEMISTRY .3. THE ROLE OF EXACT EXCHANGE [J].
BECKE, AD .
JOURNAL OF CHEMICAL PHYSICS, 1993, 98 (07) :5648-5652
[5]   General and efficient algorithms for obtaining maximally localized Wannier functions [J].
Berghold, G ;
Mundy, CJ ;
Romero, AH ;
Hutter, J ;
Parrinello, M .
PHYSICAL REVIEW B, 2000, 61 (15) :10040-10048
[6]   Electron pairs, localized orbitals and electron correlation [J].
Bytautas, L ;
Ruedenberg, K .
MOLECULAR PHYSICS, 2002, 100 (06) :757-781
[7]   ELECTRONIC-STRUCTURE AND DISSOCIATION CURVES FOR THE GROUND-STATES OF TI2 AND TI-2+ FROM RELATIVISTIC EFFECTIVE POTENTIAL CALCULATIONS [J].
CHRISTIANSEN, PA ;
PITZER, KS .
JOURNAL OF CHEMICAL PHYSICS, 1981, 74 (02) :1162-1165
[8]  
Coulson C. A, 1941, P ROY SOC EDINB A, VA61, P115
[9]  
Cramer CJ., 2002, ESSENTIALS COMPUTATI
[10]  
DOLG M, 2002, RELATIVISTIC ELECT 1, P523