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Square antiprisms repulsion energy coefficients

Beryllium, bis(t ifluo oacetylacetone)-gas chromatography, 560 Berzelius s conjugate theory, 4 Bicapped pentagonal prisms repulsion energy coefficients, 34 twelve-coordinate compounds, 100 Bicapped square antiprisms repulsion energy coefficients, 33,34 ten-eoordinate compounds, 98 1, r-Binaphthyl, 2,2 -bis(diphenylphosphino)-complexes... [Pg.582]

Spot tests, 1, 552 Square antiprisms dodecahedra, cubes and, 1, 84 eight-coordinate compounds, 1,83 repulsion energy coefficients, 1, 33, 34 Square planar complexes, 1,191, 204 structure, 1, 37 Square pyramids five-coordinate compounds, 1,39 repulsion energy coefficients. 1,34 Squares... [Pg.225]

The two most stable structures, the square antiprism and the dodecahedron, are considered in more detail below. The square antiprism is observed to be much more common than the dodecahedron, in agreement with the above repulsion energy coefficients. [Pg.83]

Calculations, based on VSEPR theory so as to minimize repulsion between ligands in some of these afore-mentioned forms, have shown that repulsion energy coefficients for the square antiprism, dodecahedron, and cube are about the same but that the antiprism should be the most stable configuration for a MLg polyhedron (S). This principle has also been applied to K4[Mo(CN)g] 2H20, for which, in contrast... [Pg.243]


See other pages where Square antiprisms repulsion energy coefficients is mentioned: [Pg.91]    [Pg.91]    [Pg.97]    [Pg.582]    [Pg.601]    [Pg.603]   
See also in sourсe #XX -- [ Pg.33 , Pg.34 ]

See also in sourсe #XX -- [ Pg.33 , Pg.34 ]




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Antiprism, square

Antiprisms

Energy repulsive

Repulsion energy

Repulsion energy coefficients

Square antiprisms

Squares repulsion energy coefficients

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