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Q.Explain Werner's theory of coordination compounds with suitable examples.

Andhra Pradesh BieapBIEAP Intermediate Board 2024Subjective· 4mImportance★★★★★
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Werner proposed that metals in complexes exhibit both a primary (ionisable) and a secondary (fixed, non-ionisable) valence, with the secondary valence defining the complex's spatial geometry.

Werner's theory of coordination compounds (1893) was the first successful theory to explain the structure and bonding of coordination compounds. Its main postulates are:

1. Two types of valence:

  • Primary valence (ionisable valence): This corresponds to the oxidation state of the metal, and is satisfied by negative ions. It is ionisable, i.e., these ions can be precipitated as ions in solution (e.g. by AgNO3 for Cl−). Primary valence is non-directional.
  • Secondary valence (non-ionisable valence / coordination number): This is a fixed number for a given metal, satisfied by neutral molecules or negative ions (ligands). These ligands are directly and firmly bonded to the central metal atom/ion and are not ionisable (do not dissociate/precipitate in solution). Secondary valence is directional, i.e., it determines the geometry of the complex.

2. Every metal tends to satisfy both its primary and secondary valences.

3. Secondary valences are directed towards fixed positions in space, giving the complex a definite geometrical shape — e.g. a coordination number of 6 usually corresponds to octahedral geometry, and a coordination number of 4 corresponds to tetrahedral or square planar geometry.

Example: In CoCl3.6NH3 (i.e. [Co(NH3)6]Cl3):

  • Primary valence = 3 (satisfied by 3 Cl− ions, which ARE precipitated by AgNO3, i.e. they exist as free ionisable Cl− outside the coordination sphere).
  • Secondary valence (coordination number) = 6 (satisfied by 6 NH3 molecules, which are directly bonded to Co3+ inside the coordination sphere and are NOT precipitated by AgNO3). …

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