NCERT Solutions for Class 12 Chemistry Chapter 5 – Coordination Compounds (English Medium)
🧿 Get NCERT Solutions for Class 12 Chemistry Chapter 5 – Coordination Compounds with accurate answers and step-by-step explanations in a neat, exam-ready format. This chapter covers Werner’s theory, IUPAC naming, coordination number & ligands, isomerism (geometrical, optical, linkage), bonding (VBT & CFT), magnetic properties, stability, and applications of coordination compounds. Perfect for CBSE boards and NEET/JEE practice. ✅
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Q.1: Explain the bonding in coordination compounds in terms of Werner’s postulates.
Answer
👉 According to Werner’s theory, bonding in coordination compounds is explained using two kinds of valencies of the central metal atom/ion (CMA):📌 Primary valency (oxidation state) and 📌 Secondary valency (coordination number) .
👉 These two valencies decide which ions are inside/outside the coordination sphere and also decide the shape (geometry) of the complex.
Explanation (Step by Step)
1) Two types of valencies (linkages) 🤔
✅ (i)
Primary valency = Oxidation number (O.N.)
📌 Nature: Non-directional and ionisable
👉 It is satisfied by negative ions (anions) .
👉 These ions usually stay outside the coordination sphere and dissociate in solution.
📌 Nature: Non-directional and ionisable
👉 It is satisfied by negative ions (anions) .
👉 These ions usually stay outside the coordination sphere and dissociate in solution.
✅ (ii)
Secondary valency = Coordination number (C.N.)
📌 Nature: Directional and non-ionisable
👉 It is satisfied by ligands (neutral molecules like NH3, H2O or anions like Cl−) that are directly attached to the metal.
👉 These ligands stay inside the coordination sphere .
📌 Nature: Directional and non-ionisable
👉 It is satisfied by ligands (neutral molecules like NH3, H2O or anions like Cl−) that are directly attached to the metal.
👉 These ligands stay inside the coordination sphere .
2) Fixed number + fixed geometry 📌
👉 Werner proposed that the groups/ions attached by secondary valency arrange themselves in a definite spatial pattern (geometry).
Examples (common):
• C.N. = 6 → octahedral
• C.N. = 4 → tetrahedral or square planar
👉 Werner proposed that the groups/ions attached by secondary valency arrange themselves in a definite spatial pattern (geometry).
Examples (common):
• C.N. = 6 → octahedral
• C.N. = 4 → tetrahedral or square planar
3) Example to understand bonding clearly ✅
Consider: [CoCl2(NH3)4]Cl
📌 Here:
• Inside bracket (coordination sphere): [CoCl2(NH3)4]+
• Outside bracket (ionisable ion): Cl−
👉 Primary valency (O.N.) of Co = +3
Reason:
Let oxidation state of Co = x
x + 2(−1) + 4(0) = +1 ⟹ x − 2 = +1 ⟹ x = +3
✅ So, primary valency is satisfied by 3 Cl− in total .
But only 2 Cl− are inside (non-ionisable) , and 1 Cl− is outside (ionisable) .
👉 Secondary valency (C.N.) = 2 (Cl−) + 4 (NH3) = 6
📌 So the complex has octahedral geometry .
Key takeaway 🤔
• Outside ion (Cl−) shows ionisation (gives precipitate with AgNO3)
• Inside ligands do not ionise easily because they are directly bonded to the metal.
Consider: [CoCl2(NH3)4]Cl
📌 Here:
• Inside bracket (coordination sphere): [CoCl2(NH3)4]+
• Outside bracket (ionisable ion): Cl−
👉 Primary valency (O.N.) of Co = +3
Reason:
Let oxidation state of Co = x
x + 2(−1) + 4(0) = +1 ⟹ x − 2 = +1 ⟹ x = +3
✅ So, primary valency is satisfied by 3 Cl− in total .
But only 2 Cl− are inside (non-ionisable) , and 1 Cl− is outside (ionisable) .
👉 Secondary valency (C.N.) = 2 (Cl−) + 4 (NH3) = 6
📌 So the complex has octahedral geometry .
Key takeaway 🤔
• Outside ion (Cl−) shows ionisation (gives precipitate with AgNO3)
• Inside ligands do not ionise easily because they are directly bonded to the metal.
Did You Know?
✅ Werner’s coordination theory was so important that it earned him the
Nobel Prize (1913)
.👉 His biggest contribution was proving that ligands have fixed positions in space, which directly explains isomerism (like cis/trans) in coordination compounds.
Q.2: FeSO4 solution mixed with (NH4)2SO4 solution in 1:1 molar ratio gives the test of Fe2+ ion but CuSO4 solution mixed with aqueous ammonia in 1:4 molar ratio does not give the test of Cu2+ ion. Explain why.
Answer
👉 FeSO4 + (NH4)2SO4 forms a
double salt (Mohr’s salt)
,
which
dissociates completely in water
to give free
Fe2+ ions
,
so it gives the usual Fe2+ tests.👉 But CuSO4 + NH3 (1:4) forms a complex compound [Cu(NH3)4]2+ , which does not provide free Cu2+ ions easily, so the normal Cu2+ tests are not shown.
Explanation (Step by Step)
1) FeSO4 + (NH4)2SO4 → Double salt (Mohr’s salt) 📌
When mixed in 1:1, they form Mohr’s salt (a double salt):
👉 FeSO4(aq) + (NH4)2SO4(aq) + 6H2O(l)
→ FeSO4·(NH4)2SO4·6H2O (Mohr’s salt)
👉 FeSO4(aq) + (NH4)2SO4(aq) + 6H2O(l)
→ FeSO4·(NH4)2SO4·6H2O (Mohr’s salt)
🤔 Important:
Double salts dissociate completely in water
:
👉 FeSO4·(NH4)2SO4·6H2O (aq)
⇌ Fe2+(aq) + 2NH4+(aq) + 2SO42−(aq) + 6H2O(l)
✅ Since Fe2+ ions are free in solution, the solution gives the Fe2+ test.
👉 FeSO4·(NH4)2SO4·6H2O (aq)
⇌ Fe2+(aq) + 2NH4+(aq) + 2SO42−(aq) + 6H2O(l)
✅ Since Fe2+ ions are free in solution, the solution gives the Fe2+ test.
2) CuSO4 + NH3 → Complex compound 📌
When CuSO4 is treated with excess NH3 (about 1:4), Cu2+ forms a stable ammine complex:
👉 CuSO4(aq) + 4NH3(aq)
→ [Cu(NH3)4]SO4(aq)
👉 CuSO4(aq) + 4NH3(aq)
→ [Cu(NH3)4]SO4(aq)
or in ionic form:
👉 Cu2+(aq) + 4NH3(aq) ⇌ [Cu(NH3)4]2+(aq)
🤔 Here, copper is mostly present as complex ion, not as “free” Cu2+ .
✅ इसलिए normal Cu2+ test (which needs free Cu2+) clearly नहीं मिलता.
👉 Cu2+(aq) + 4NH3(aq) ⇌ [Cu(NH3)4]2+(aq)
🤔 Here, copper is mostly present as complex ion, not as “free” Cu2+ .
✅ इसलिए normal Cu2+ test (which needs free Cu2+) clearly नहीं मिलता.
Did You Know?
✅ Double salt vs complex salt is a classic NCERT concept:👉 Double salts dissociate into simple ions completely in water (so they show tests of their ions).
👉 Complexes keep the metal ion bound inside the complex ion (so free Mn+ tests may disappear or become weak).
Q.3: Explain with two examples each of the following: coordination entity, ligand, coordination number, coordination polyhedron, homoleptic and heteroleptic.
Answer
1) Coordination entity
📌 A coordination entity is a central metal atom/ion bonded to a fixed number of ligands, written inside [ ] as one unit.
👉 Examples:
1. [CoCl3(NH3)3]
2. [Ni(CO)4]
📌 A coordination entity is a central metal atom/ion bonded to a fixed number of ligands, written inside [ ] as one unit.
👉 Examples:
1. [CoCl3(NH3)3]
2. [Ni(CO)4]
2) Ligand
📌 A ligand is an ion or molecule that donates a lone pair of electrons to the central metal to form a coordinate bond .
👉 Examples:
1. NH3 (neutral ligand)
2. Cl− (anionic ligand)
📌 A ligand is an ion or molecule that donates a lone pair of electrons to the central metal to form a coordinate bond .
👉 Examples:
1. NH3 (neutral ligand)
2. Cl− (anionic ligand)
3) Coordination number (C.N.)
📌 Coordination number is the number of donor atoms (or ligands) directly attached to the central metal ion.
👉 Examples:
1. [Co(NH3)6]3+ → C.N. of Co = 6
2. [PtCl4]2− → C.N. of Pt = 4
📌 Coordination number is the number of donor atoms (or ligands) directly attached to the central metal ion.
👉 Examples:
1. [Co(NH3)6]3+ → C.N. of Co = 6
2. [PtCl4]2− → C.N. of Pt = 4
4) Coordination polyhedron
📌 The 3D arrangement (shape) of ligand donor atoms around the metal is called the coordination polyhedron.
👉 Examples:
1. [Co(NH3)6]3+ → Octahedral
2. [PtCl4]2− → Square planar
(Also common: tetrahedral, e.g., [Ni(CO)4] is tetrahedral.)
📌 The 3D arrangement (shape) of ligand donor atoms around the metal is called the coordination polyhedron.
👉 Examples:
1. [Co(NH3)6]3+ → Octahedral
2. [PtCl4]2− → Square planar
(Also common: tetrahedral, e.g., [Ni(CO)4] is tetrahedral.)
5) Homoleptic complex
📌 A homoleptic complex has only one kind of ligand attached to the metal.
👉 Examples:
1. [Co(NH3)6]3+ (only NH3)
2. [PtCl4]2− (only Cl−)
📌 A homoleptic complex has only one kind of ligand attached to the metal.
👉 Examples:
1. [Co(NH3)6]3+ (only NH3)
2. [PtCl4]2− (only Cl−)
6) Heteroleptic complex
📌 A heteroleptic complex has more than one kind of ligand attached to the metal.
👉 Examples:
1. [Co(NH3)4Cl2]+ (NH3 and Cl−)
2. [Pt(NH3)2Cl2] (NH3 and Cl−)
📌 A heteroleptic complex has more than one kind of ligand attached to the metal.
👉 Examples:
1. [Co(NH3)4Cl2]+ (NH3 and Cl−)
2. [Pt(NH3)2Cl2] (NH3 and Cl−)
Explanation (Simple)
🤔 Think of a coordination compound like a
“central metal + surrounding helpers (ligands)”
.📌 The number of helpers = coordination number , and the way they sit in space = coordination polyhedron .
✅ If all helpers are the same = homoleptic , if different = heteroleptic .
Did You Know?
✅ The famous anticancer drug
cisplatin
is a heteroleptic complex:
[Pt(NH3)2Cl2]
.👉 Its cis form is active, while the trans form is much less effective.
Q.4: What is meant by unidentate, bidentate and ambidentate ligands? Give two examples for each.
Answer
1) Unidentate ligand
📌 A unidentate ligand has only one donor atom , so it forms one coordinate bond with the central metal atom/ion (CMA).
👉 Examples:
1. Cl− (donor atom: Cl)
2. NH3 (donor atom: N)
📌 A unidentate ligand has only one donor atom , so it forms one coordinate bond with the central metal atom/ion (CMA).
👉 Examples:
1. Cl− (donor atom: Cl)
2. NH3 (donor atom: N)
2) Bidentate ligand
📌 A bidentate ligand has two donor atoms , so it can form two coordinate bonds with the same metal ion (it “grips” the metal like a claw).
👉 Examples:
1. en (ethane-1,2-diamine) = H2N–CH2–CH2–NH2 (donor atoms: 2 N)
2. C2O42− (oxalate ion) (donor atoms: 2 O)
📌 A bidentate ligand has two donor atoms , so it can form two coordinate bonds with the same metal ion (it “grips” the metal like a claw).
👉 Examples:
1. en (ethane-1,2-diamine) = H2N–CH2–CH2–NH2 (donor atoms: 2 N)
2. C2O42− (oxalate ion) (donor atoms: 2 O)
3) Ambidentate ligand
📌 An ambidentate ligand has two possible donor atoms , but it can donate only one at a time (it can attach through either donor site, not both together).
👉 Examples:
1. NO2− (can bind via N = nitro or via O = nitrito)
2. SCN− (can bind via S = thiocyanato or via N = isothiocyanato)
📌 An ambidentate ligand has two possible donor atoms , but it can donate only one at a time (it can attach through either donor site, not both together).
👉 Examples:
1. NO2− (can bind via N = nitro or via O = nitrito)
2. SCN− (can bind via S = thiocyanato or via N = isothiocyanato)
Explanation (Simple)
🤔 Think of
“dentate”
as “teeth” used to hold the metal:📌 Uni = 1 tooth, Bi = 2 teeth, Ambi = 2 options but uses only 1 at a time.
Did You Know?
✅ Ambidentate ligands can give
linkage isomerism
.👉 Example: NO2− can form M–NO2 (nitro) or M–ONO (nitrito) , which are different compounds with different properties.
Q.5: Specify the oxidation numbers of the metals in the following coordination entities:
(i) [Co(H2O)(CN)(en)2]2+
(ii) [CoBr2(en)2]+
(iii) [PtCl4]2−
(iv) K3[Fe(CN)6]
(v) [Cr(NH3)3Cl3]
(ii) [CoBr2(en)2]+
(iii) [PtCl4]2−
(iv) K3[Fe(CN)6]
(v) [Cr(NH3)3Cl3]
Answer ✅ (Oxidation number of metal)
(i) [Co(H2O)(CN)(en)2]2+
Let oxidation number of Co = x
📌 Charges: H2O = 0, CN− = −1, en = 0 (neutral), total charge = +2
👉 x + 0 + (−1) + 0 = +2
✅ x = +3
Co = +3
Let oxidation number of Co = x
📌 Charges: H2O = 0, CN− = −1, en = 0 (neutral), total charge = +2
👉 x + 0 + (−1) + 0 = +2
✅ x = +3
Co = +3
(ii) [CoBr2(en)2]+
Let oxidation number of Co = x
📌 Br− = −1 each, en = 0, total charge = +1
👉 x + 2(−1) + 0 = +1
✅ x = +3
Co = +3
Let oxidation number of Co = x
📌 Br− = −1 each, en = 0, total charge = +1
👉 x + 2(−1) + 0 = +1
✅ x = +3
Co = +3
(iii) [PtCl4]2−
Let oxidation number of Pt = x
📌 Cl− = −1 each, total charge = −2
👉 x + 4(−1) = −2
👉 x − 4 = −2
✅ x = +2
Pt = +2
Let oxidation number of Pt = x
📌 Cl− = −1 each, total charge = −2
👉 x + 4(−1) = −2
👉 x − 4 = −2
✅ x = +2
Pt = +2
(iv) K3[Fe(CN)6]
Let oxidation number of Fe = x
📌 K = +1 each ⇒ 3K = +3
CN− = −1 each ⇒ 6 CN = −6
Whole compound is neutral.
👉 (+3) + x + (−6) = 0
✅ x = +3
Fe = +3
Let oxidation number of Fe = x
📌 K = +1 each ⇒ 3K = +3
CN− = −1 each ⇒ 6 CN = −6
Whole compound is neutral.
👉 (+3) + x + (−6) = 0
✅ x = +3
Fe = +3
(v) [Cr(NH3)3Cl3]
Let oxidation number of Cr = x
📌 NH3 = 0, Cl− = −1 each, complex is neutral (0)
👉 x + 3(0) + 3(−1) = 0
👉 x − 3 = 0
✅ x = +3
Cr = +3
Let oxidation number of Cr = x
📌 NH3 = 0, Cl− = −1 each, complex is neutral (0)
👉 x + 3(0) + 3(−1) = 0
👉 x − 3 = 0
✅ x = +3
Cr = +3
Explanation (Quick logic)
🤔 Neutral ligands like
H2O,
NH3,
en
contribute
0 charge.📌 Anionic ligands like CN−, Cl−, Br− contribute −1 each.
👉 Add charges of ligands + metal oxidation number = overall charge of the complex.
Did You Know?
✅
en (ethane-1,2-diamine)
is a neutral bidentate ligand, so it changes coordination number and stability, but does not change oxidation number directly.
Q.6: Using IUPAC norms write the formulas for the following:
(i) Tetrahydroxidozincate(II)
(ii) Potassium tetrachloridopalladate(II)
(iii) Diamminedichloridoplatinum(II)
(iv) Potassium tetracyanidonickelate(II)
(v) Pentaamminenitrito-O-cobalt(III)
(vi) Hexaamminecobalt(III) sulphate
(vii) Potassium tri(oxalato)chromate(III)
(viii) Hexaammineplatinum(IV)
(ix) Tetrabromidocuprate(II)
(x) Pentaamminenitrito-N-cobalt(III)
(i) Tetrahydroxidozincate(II)
(ii) Potassium tetrachloridopalladate(II)
(iii) Diamminedichloridoplatinum(II)
(iv) Potassium tetracyanidonickelate(II)
(v) Pentaamminenitrito-O-cobalt(III)
(vi) Hexaamminecobalt(III) sulphate
(vii) Potassium tri(oxalato)chromate(III)
(viii) Hexaammineplatinum(IV)
(ix) Tetrabromidocuprate(II)
(x) Pentaamminenitrito-N-cobalt(III)
Answer ✅
(i) Tetrahydroxidozincate(II)
👉 [Zn(OH)4]2−
👉 [Zn(OH)4]2−
(ii) Potassium tetrachloridopalladate(II)
👉 K2[PdCl4]
👉 K2[PdCl4]
(iii) Diamminedichloridoplatinum(II)
👉 [Pt(NH3)2Cl2]
👉 [Pt(NH3)2Cl2]
(iv) Potassium tetracyanidonickelate(II)
👉 K2[Ni(CN)4]
👉 K2[Ni(CN)4]
(v) Pentaamminenitrito-O-cobalt(III)
👉 [Co(NH3)5(ONO)]2+
📌 Here nitrito-O means NO2− is bonded through O.
👉 [Co(NH3)5(ONO)]2+
📌 Here nitrito-O means NO2− is bonded through O.
(vi) Hexaamminecobalt(III) sulphate
👉 [Co(NH3)6]2(SO4)3
👉 [Co(NH3)6]2(SO4)3
(vii) Potassium tri(oxalato)chromate(III)
👉 K3[Cr(C2O4)3]
👉 K3[Cr(C2O4)3]
(viii) Hexaammineplatinum(IV)
👉 [Pt(NH3)6]4+
👉 [Pt(NH3)6]4+
(ix) Tetrabromidocuprate(II)
👉 [CuBr4]2−
👉 [CuBr4]2−
(x) Pentaamminenitrito-N-cobalt(III)
👉 [Co(NH3)5(NO2)]2+
📌 Here nitrito-N means NO2− is bonded through N (nitro form).
👉 [Co(NH3)5(NO2)]2+
📌 Here nitrito-N means NO2− is bonded through N (nitro form).
Explanation (Quick logic)
🤔
ammine (NH3)
is neutral, while
hydroxido (OH−),
chlorido (Cl−),
bromido (Br−),
cyanido (CN−),
oxalato (C2O42−),
nitrito (NO2−)
are anionic.📌 Add charges to match the metal oxidation state and overall charge, then balance with counter-ions like K+, SO42−, etc.
Did You Know?
✅
Nitrito-O (ONO)
and
nitrito-N (NO2)
are examples of linkage isomerism.👉 Same formula, different attachment atom (O vs N), different properties!