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Geometry coordination

Some of the other features of this program are the ability to compute transition states, coordinate driving, conformation searches, combinatorial tools, and built-in visualization. The builder includes atoms and fragments for organics, inorganics, peptides, nucleotides, chelates, high-coordination geometries, and... [Pg.330]

Copper(I) tends towards a tetrahedral coordination geometry in complexes. With 2,2 -bipyr-idine as a chelate ligand a distorted tetrahedral coordination with almost orthogonal ligands results. 2,2 -Bipyridine oligomers with flexible 6,6 -links therefore form double helices with two 2,2 -bipyridine units per copper(I) ion (J. M. Lehn, 1987,1988). J. M. Lehn (1990 U. Koert, 1990) has also prepared such helicates with nucleosides, e.g., thymidine, covalently attached to suitable spacers to obtain water-soluble double helix complexes, so-called inverted DNA , with internal positive charges and external nucleic bases. Cooperative effects lead preferentially to two identical strands in these helicates when copper(I) ions are added to a mixture of two different homooligomers. [Pg.345]

The most common oxidation states and the corresponding electronic configuration of mthenium are +2 and +3 (t5 ). Compounds are usually octahedral. Compounds in oxidations states from —2 and 0 (t5 ) to +8 have various coordination geometries. Important appHcations of mthenium compounds include oxidation of organic compounds and use in dimensionally stable anodes (DSA). [Pg.177]

The most common oxidation states and the corresponding electronic configurations of osmium ate +2 and + (t5 ), which ate usually octahedral. Stable oxidation states that have various coordination geometries include —2 and 0 to +8 (P] The single most important appHcation is OsO oxidation of olefins to diols. Enantioselective oxidations have also been demonstrated. [Pg.178]

The most common oxidation states, corresponding electronic configurations, and coordination geometries of iridium are +1 (t5 ) usually square plane although some five-coordinate complexes are known, and +3 (t7 ) and +4 (t5 ), both octahedral. Compounds ia every oxidation state between —1 and +6 (<5 ) are known. Iridium compounds are used primarily to model more active rhodium catalysts. [Pg.181]

Chlorides. The oHve-green trichloride [10025-93-1], UCl, has been synthesized by chlorination of UH [13598-56-6] with HCl. This reaction is driven by the formation of gaseous H2 as a reaction by-product. The stmcture of the trichloride has been deterrnined and the central uranium atom possesses a riine-coordinate tricapped trigonal prismatic coordination geometry. The solubiUty properties of UCl are as follows soluble in H2O, methanol, glacial acetic acid insoluble in ethers. [Pg.332]

Bromides and Iodides. The red-brown tribromide, UBr [13470-19-4], and the black tniodide, Ul [13775-18-3], may both be prepared by direct interaction of the elements, ie, uranium metal with X2 (X = Br, I). The tribromide has also been prepared by interaction of UH and HBr, producing H2 as a reaction product. The tribromide and tniodide complexes are both polymeric soflds with a local bicapped trigonal prismatic coordination geometry. The tribromide is soluble in H2O and decomposes in alcohols. [Pg.332]

Table 1. Polyhedral Symbols for Common Coordination Geometries ... Table 1. Polyhedral Symbols for Common Coordination Geometries ...
Figure 5.12 Coordination geometry about Ca in polymeric [Ca(C5H5)2l showing 2k rj -, and ij - bonding (see text). Figure 5.12 Coordination geometry about Ca in polymeric [Ca(C5H5)2l showing 2k rj -, and ij - bonding (see text).
In the vast majority of its compounds Si is tetrahedrally coordinated but sixfold coordination also occurs, and occasional examples of other coordination geometries are known as indicated in Table 9.2 (p. 335). Unstable 2-coordinate Si has been known for many years but in 1994 the stable, colourless, crystalline silylene [ SiNBu CH=CHNBu j, structure (1), p. 336, was... [Pg.332]

This latter complex also has a linearly coordinated NO group. The diagrams show only the coordination geometry around ihe metal (the phenyl groups being omitted for clarity). [Pg.451]

Figure 11.12 Comparison of the coordination geometries of [Co(diars)2(NO)] " and [IrCl2(NO)(PPh3)l diars = l,2-bis(di-methylarsino)benzene. Figure 11.12 Comparison of the coordination geometries of [Co(diars)2(NO)] " and [IrCl2(NO)(PPh3)l diars = l,2-bis(di-methylarsino)benzene.
Figure 11.16 Coordination geometries of the nitrate group showing typical values for the interatomic distances and angles. Further structural details are in ref. 150. Figure 11.16 Coordination geometries of the nitrate group showing typical values for the interatomic distances and angles. Further structural details are in ref. 150.
The detailed coordination geometry about As, Sb or Bi in these clusters varies substantially, and is of considerable signilicancc in describing the nature of the bonding in these species. [Pg.568]

Figure 13.12 Schematic representation of the structure of the complex anion LSbjCIiiO] " showing the two different coordination geometries about Sb and the unique quadruply bridging Cl atom. Figure 13.12 Schematic representation of the structure of the complex anion LSbjCIiiO] " showing the two different coordination geometries about Sb and the unique quadruply bridging Cl atom.
Chemical properties of dioxygen, O2 Table 14.3 Coordination geometry of oxygen... [Pg.613]

Figure 15.16 Coordination geometries of bis- and tris-l,2-dithiolene complexes (see text). Figure 15.16 Coordination geometries of bis- and tris-l,2-dithiolene complexes (see text).
The known coordination geometries of Se, Te and Po are summarized in Table 16.3 together... [Pg.756]

Other less-symmetrical coordination geometries for Se and Te occur in the /t,-Se2 and /t-Te2 complexes and the polyatomic cluster cations Seio and Tee" " ", as mentioned below. [Pg.757]


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See also in sourсe #XX -- [ Pg.553 ]

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See also in sourсe #XX -- [ Pg.26 ]




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Alkali metals coordination geometry

Analytic geometry coordinate systems

Analytic geometry coordinates

Analytical geometry, plane coordinate systems

Angular parameters coordination geometry

Antimony coordination geometries

Axial coordination compounds geometry

Blue copper proteins metal coordination geometry

Carbanions coordination geometry

Cartesian coordinates Differential geometry

Coordinate Systems for Bragg-Brentano Geometry

Coordinate geometry

Coordinated alkynes, bent geometry

Coordination Geometries and Electron Counts

Coordination Geometry of Peroxo and Hydroxamido Vanadates

Coordination chemistry linear geometries

Coordination chemistry octahedral geometries

Coordination chemistry square-planar geometries

Coordination chemistry tetrahedral geometries

Coordination complexes geometries

Coordination compounds excited-state geometries

Coordination compounds geometries

Coordination compounds preferred geometries 68

Coordination geometries inorganic compounds

Coordination geometries of phosphorus

Coordination geometries of some cations

Coordination geometries porphyrin supramolecular assembly

Coordination geometries salen ligands

Coordination geometries, common

Coordination geometry capped square antiprism

Coordination geometry change

Coordination geometry common transition metal

Coordination geometry distorted octahedral

Coordination geometry distorted tetrahedral

Coordination geometry distorted trigonal bipyramidal

Coordination geometry distortion

Coordination geometry in pentacoordinate anionic complexe

Coordination geometry in pentacoordinate neutral complexe

Coordination geometry in self-associates

Coordination geometry octahedral

Coordination geometry of rare-earth cations

Coordination geometry skew-trapezoidal

Coordination geometry square planar

Coordination geometry square pyramid

Coordination geometry square pyramid, copper complexes

Coordination geometry structures

Coordination geometry tetrahedral

Coordination geometry trans-SMS angle

Coordination geometry tricapped trigonal prism

Coordination geometry trigonal bipyramid

Coordination geometry trigonal planar

Coordination geometry trigonal prism

Coordination geometry tris

Coordination geometry tris complexes

Coordination geometry vibrational spectra

Coordination number 8 fluorides geometries

Coordination number and packing geometry

Coordination numbers geometries and

Coordination numbers geometry

Coordination polymerization constrained geometry

Coordination sphere, geometry

Copper coordination geometries

Data coordination geometry

Dioxygen coordination geometries

Distance geometry three dimensional coordinates

Divalent compounds containing coordination geometry

Effect of coordination geometry

Eight-coordinate actinide complexes with bidentate ligands, geometry

Electronic Configuration and Coordination Geometry

Enzyme coordination geometry

Five-coordinate geometry

Five-coordinate geometry ligand field stabilization energies

Five-coordinate geometry molybdenum hexacarbonyl/poly

Four-coordination idealized geometries

Geometries of Complexes with Different Coordination Numbers

Geometry coordinate matrices

Geometry coordinate system

Geometry of coordination compounds

Germanium complexes coordination geometry

Hafnium complexes coordination geometries

Halogen complexes coordination geometry

Inorganic complexes coordination geometrie

Ions Coordination Numbers, Geometries, and Ligands

Iron complexes coordination geometries

Lead complexes coordination geometry

Magnetic circular dichroism coordination geometry

Main group-transition metal cluster coordination geometry

Manganese complexes coordination geometries

Metal coordination geometry

Metal-nitrosyl compounds coordination geometries

Molecular geometry coordinate space

Molecular geometry coordination compounds

Molecular geometry of coordinating

Molecular geometry of coordinating compounds

Mossbauer coordination geometries

Noble gases coordination geometry

Organomagnesium compounds coordination geometry

Peroxo coordination geometries

Phosphorus coordination geometries

Plane analytic geometry coordinate systems

Rare-earth cations, coordination geometries

Selenium coordination geometries

Silicon complexes coordination geometry

Spin-orbit coupling coordination geometry

Square coordination geometry

Sulfur coordination geometries

Superoxo coordination geometries

Symmetrical Examples Coordinate Geometries at Metal Centres

Tellurium coordination geometries

Three-coordinate geometries

Three-coordination, idealized geometries

Transition metals coordination geometry

Transition metals coordination geometry diversity

Transition-metal catalysis coordination number, geometry

Tricapped coordination geometry

Unusual Bonds and Coordination Geometries

Unusual Coordination Geometries

XANES coordination geometry

Zirconium complexes coordination geometries

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