VSEPR Flashcards

1
Q

valence shell electron pair repulsion theory

A

predicts shapes of molecules and atoms by assuming that valence shell electron pairs are arranged around so that electron pairs are kept as far away from each other as possible. Double or triple bonds will not change this.

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2
Q

Dipole moment

A

Arrows that point to the more electronegative ion. If they oppose, they cancel out. If they go towards each other, they add together.

Molecules with zero dipole moments are non polar

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3
Q

Polar molecules

A

Non symmetrical, with a dipole moment

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4
Q

Bond theory

A

Bonds form when two orbitals overlap

Total number of electrons in each orbital is no more than two

Strength of the bonds depends on the amount of overlap, orbitals bond in the directions in which they protrude a point to obtain maximum overlap

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5
Q

Hybrid orbitals

A

Orbitals used to describe bonding that are obtained by taking combinations of atomic orbitals. Number of hybrid orbitals is always equal to the number of orbitals used

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6
Q

sp shape

A

Linear

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7
Q

sp2 shape

A

trigonal planar

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8
Q

sp3 shape

A

tetrahedral

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9
Q

sp3d

A

trigonal biprymidal

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10
Q

2p3d2

A

Octahedral

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11
Q

Sigma bonds

A

Formed when there is a single bond, when two 2 orbitals overlap

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12
Q

Pi bonds

A

Electron distribution above and below the bond axis- formed by a sideways gap of 2 p orbitals. Will have a sigma bond with it

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13
Q

Diatomic molecules

A

Non polar if the two atoms are identical

Polar if they are different

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14
Q

Triatomic molecules

A

If they are linear with the same atoms bonded to the central atom, non polar

if terminal atoms are different they are polar

If the molecule is bent, it is polar

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15
Q

Steric number

A

The number of atoms bonded to an electron

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