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🔮 Coordination Chemistry & Crystal Field Theory

Coordination chemistry combines transition metal d-orbital physics with ligand coordination field theory. In competitive exams (IIT-JEE Advanced & Olympiads), coordination chemistry is the single highest-weightage topic in inorganic chemistry, encompassing stereoisomer counting, CFSE calculations, spin-only magnetic moments, and synergic π-back-bonding.


1. 🏛️ Werner's Coordination Theory

  1. Primary Valency: Ionizable, corresponds to the oxidation state of the central metal, satisfied by anions.
  2. Secondary Valency: Non-ionizable, corresponds to the coordination number, directional in space, satisfied by neutral molecules or anions.

Example: Precipitation with excess AgNO3:

  • [Co(NH3)6]Cl33 moles of AgCl per mole of complex (3 ionizable Cl).
  • [Co(NH3)5Cl]Cl22 moles of AgCl.
  • [Co(NH3)4Cl2]Cl1 mole of AgCl.
  • [Co(NH3)3Cl3]0 moles of AgCl (neutral complex, non-conducting).

2. 🔀 Isomerism in Coordination Complexes

2.1 Structural Isomerism

  1. Ionization Isomerism: Exchange of ions inside and outside coordination sphere ([Co(NH3)5Br]SO4 gives white BaSO4 with BaCl2, while [Co(NH3)5SO4]Br gives pale yellow AgBr with AgNO3).
  2. Hydrate / Solvate Isomerism: Difference in number of water molecules as ligands vs lattice water ([Cr(H2O)6]Cl3 violet, [Cr(H2O)5Cl]Cl2H2O grey-green).
  3. Linkage Isomerism: Occurs with ambidentate ligands (NO2/ONO, SCN/NCS, CN/NC).
  4. Coordination Isomerism: Exchange of ligands between cationic and anionic complex entities ([Co(NH3)6][Cr(CN)6] and [Cr(NH3)6][Co(CN)6]).

2.2 Stereoisomerism (Geometrical & Optical)

Complex FormulaGeometrical Isomers (GI)Enantiomeric Pairs (Optical)Total Stereoisomers
[Ma2b2] (Square Planar)2 (cis, trans)0 (all planar complexes have σ plane)2
[Mabcd] (Square Planar)303
[Ma4b2] (Octahedral)2 (cis, trans)0 (cis has plane, trans has inversion center)2
[Ma3b3] (Octahedral)2 (facial / fac, meridional / mer)02
[M(AA)3] (e.g. [Co(en)3]3+)11 pair (d and l enantiomers)2 (Chiral, optically active!)
[M(AA)2b2] (e.g. [Co(en)2Cl2]+)2 (cis, trans)cis is optically active (1 pair d/l); trans is achiral3 (2 cis enantiomers + 1 trans)

3. 💎 Crystal Field Theory (CFT)

CFT treats ligands as point negative charges that split the degenerate d-orbitals of the central metal ion via electrostatic repulsion.

3.1 Octahedral Field Splitting (Δo)

The 5 degenerate d-orbitals split into two sets:

  • eg set (dx2y2,dz2): Point directly along the axes destabilized by +0.6Δo (+35Δo).
  • t2g set (dxy,dyz,dxz): Point in between the axes stabilized by 0.4Δo (25Δo).
CFSEextoct=(0.4nt2g+0.6neg)Δo+mP

where P is the electron pairing energy and m is the number of newly paired electron pairs.

3.2 High-Spin vs Low-Spin Complexes

  • Strong Field Ligands (Δo>P): Pairing occurs in t2g before filling eg Low-Spin / Inner Orbital Complexes (d2sp3).
  • Weak Field Ligands (Δo<P): Electrons occupy eg singly before pairing High-Spin / Outer Orbital Complexes (sp3d2).
Spectrochemical Series: I<Br<S2<SCN<Cl<NO3<F<OH<C2O42<H2O<NCS<EDTA4<NH3<en<NO2<PPh3<CN<CO

3.3 Tetrahedral Field Splitting (Δt)

Tetrahedral splitting is inverted (e lower, t2 higher) and significantly smaller:

Δt=49Δo

Because Δt<P always, tetrahedral complexes are ALMOST ALWAYS high-spin.


4. 🧲 Synergic Bonding in Metal Carbonyls

In transition metal carbonyls (M(CO)n, e.g. Ni(CO)4,Fe(CO)5,Cr(CO)6):

  1. σ-bond: Ligand CO donates lone pair from carbon into empty hybrid metal orbital (COM).
  2. π-back-bond: Metal filled d-orbital back-donates electron density into empty π antibonding orbital of CO (MCO).

Consequences of Synergic Bonding:

MC bond order increases (shorter, stronger MC bond)CO bond order decreases (longer, weaker CO bond, lower IR vibrational frequency νCO)

Comparison of CO bond strength / stretching frequency νCO:

[Mn(CO)6]+>[Cr(CO)6]>[V(CO)6]>[Ti(CO)6]2

(Higher negative charge on metal more back-bonding weaker CO bond lowest νCO frequency).