17A.2 Flashcards

1
Q

why are transition metals reactions different compared to normal metal

A

since the transition metal ion have a much smaller radii that metal ions in the same period, so they can attract electron rich species more strongly , so strongly that the these species would form a specific number of bonds (dative coordinate bonds) with the transition metal ions in a complex structure

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2
Q

what are dative coordinate bonds

A

it is a covalent bond formed between a central metal or metal ion and a ligand, in which both of the bonding electrons is supplied by ligands

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3
Q

what does solid wedges in bonds mean

A

coming out of the plan of the paper

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4
Q

what does stripped wedges in bonds mean

A

going behind the plane of the paper

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5
Q

the arrangements of ligands around a central metal (atom/ion) are explained by

A

electron pair repulsion theory

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6
Q

how does a complex look like

A

page 187

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7
Q

how does the abbreviation of a complex look like

A

[metal(ligand)n]^charge of molecule

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8
Q

what is a ligand

A

a species that uses a lone pair of electrons to form a dative bond with a metal ion

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9
Q

what is a complex

A

a species containing a metal ion joined to ligands

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10
Q

a complex ion

A

a complex with an overall positive or negative charge

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11
Q

what is coordinate number

A

the number of dative coordinate bonds in a complex

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12
Q

what is the ligand name of water (H2O)

A

aqua

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13
Q

what is the ligand name of hydroxide (OH)^-

A

hydroxo

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14
Q

what is the ligand name of ammonia (NH3)

A

ammine

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15
Q

what is the ligand name of chloride Cl^-

A

chloro

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16
Q

if a ligand ends with an o it has a

A

negative charge

17
Q

how do you name a complex

A

page 188