CBSE Class 12 Chemistry Chapter 18: Coordination Compounds NCERT Solutions
CBSE Class 12 Chemistry Chapter 18 introduces coordination compounds, essential for understanding inorganic chemistry. This chapter explores Werner's postulates, which explain the bonding in these compounds, differentiating between primary and secondary valencies and their modern interpretations as oxidation and coordination numbers. The NCERT Solutions clarify the distinction between double salts and coordination compounds, explaining why some solutions show specific ion tests while others don't. Key terms like coordination entity, ligand, coordination number, coordination polyhedron, homoleptic, and heteroleptic complexes are defined with examples. Mastering these concepts is crucial for building a strong foundation in inorganic chemistry and preparing effectively for examinations.
Quick info
| Board | CBSE |
|---|---|
| Class | Class 12 |
| Subject | Chemistry |
| Session | 2026 |
| Language | English |
| Type | NCERT Solutions |
| Chapter | Chapter 18 |
Chapter summary
Chapter 18, Coordination Compounds, focuses on the structure and bonding in these important chemical species. The NCERT Solutions cover Werner's theory of valency, explaining the concepts of primary and secondary valencies. It differentiates between double salts and coordination compounds using practical examples like Mohr's salt and tetraamminecopper(II) sulfate. The solutions also define and provide examples for key terminology: coordination entity, ligand, coordination number, coordination polyhedron, homoleptic, and heteroleptic complexes. This chapter is essential for understanding the properties and applications of coordination compounds.
Learning outcomes
- Understand Werner's postulates for bonding in coordination compounds.
- Differentiate between primary and secondary valencies.
- Distinguish between double salts and coordination compounds.
- Identify and define coordination entities, ligands, and coordination numbers.
- Explain the concepts of coordination polyhedron, homoleptic, and heteroleptic complexes.
- Apply knowledge to explain experimental observations related to ion tests in solutions.
Topics covered
Paper topics
- Werner's Theory of Coordination Compounds
- Primary and Secondary Valencies
- Coordination Number
- Coordination Entity
- Ligands
- Coordination Polyhedron
- Homoleptic Complexes
- Heteroleptic Complexes
- Double Salts vs. Coordination Compounds
- Ionization in Solution
Important topics
- Werner's Postulates
- Distinction between Double Salts and Coordination Compounds
- Definition and Examples of Ligands
- Coordination Number and Coordination Entity
- Homoleptic and Heteroleptic Complexes
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Questions and Solutions
Question 9.1
Werner's theory, proposed by Alfred Werner, provides a foundational understanding of bonding in coordination compounds. It is based on the following postulates:
- Metal atoms or ions exhibit two types of valencies: primary valency and secondary valency.
- The primary valency is satisfied by negative ions and corresponds to the oxidation state of the metal ion. It is usually ionizable.
- The secondary valency is satisfied by neutral molecules or negative ions and corresponds to the coordination number of the metal ion. These valencies are directed in space and determine the geometry of the coordination compound. Secondary valencies are generally non-ionizable.
- The number of secondary valencies is fixed for a given metal ion.
In modern terms, primary valency is understood as the oxidation number of the central metal atom, and secondary valency is understood as the coordination number.
Question 9.2
The difference in the behavior of the two compounds in solution is due to their classification as double salts versus coordination compounds.
When is mixed with in a 1:1 molar ratio, it forms Mohr's salt, which is a double salt. The formula is . In aqueous solution, double salts dissociate completely into their constituent ions. Therefore, Mohr's salt dissociates into , , and ions. The presence of free ions allows the solution to give a positive test for this ion.
On the other hand, when reacts with aqueous ammonia in a 1:4 molar ratio, it forms a coordination compound, tetraamminecopper(II) sulfate, with the formula . In solution, this compound does not dissociate into individual and molecules. Instead, it dissociates into the complex ion and ions. The central ion is strongly bonded to the ammonia ligands, forming a stable complex ion. Because the ion is not released freely into the solution, the solution does not give the characteristic test for ions.
In summary:
- Mohr's salt () is a double salt and dissociates into , , and ions.
- Tetraamminecopper(II) sulfate () is a coordination compound and dissociates into and ions.
Question 9.3
Here are explanations and examples for each term:
(i) Coordination entity:
A coordination entity consists of a central metal atom or ion covalently bonded to a fixed number of ligands. It is often represented within square brackets and may carry a net charge.
Examples:
- Cationic complex:
- Anionic complex:
- Neutral complex:
(ii) Ligands:
Ligands are atoms, ions, or molecules that possess at least one lone pair of electrons and can donate this pair to the central metal atom or ion to form a coordinate covalent bond. They surround the central metal atom.
Examples:
- Neutral molecules: , ,
- Anions: , ,
(iii) Coordination number:
The coordination number of a central metal atom or ion in a coordination entity is the number of ligand atoms directly attached to it. It is essentially the number of coordinate bonds formed.
Examples:
- In , the coordination number of Ni is 6, as six molecules are bonded to it.
- In , the coordination number of Pt is 4, as four ions are bonded to it.
(iv) Coordination polyhedron:
The spatial arrangement of the ligands around the central metal atom or ion in a coordination entity is called the coordination polyhedron. The shape of the polyhedron depends on the coordination number.
Examples:
- For coordination number 6, the polyhedron is typically octahedral. Example: .
- For coordination number 4, the polyhedron can be tetrahedral or square planar. Example: Tetrahedral , Square planar .
(v) Homoleptic:
A coordination compound is called homoleptic if the central metal ion is bonded to only one type of ligand.
Examples:
- (Central Co ion bonded only to ligands)
- (Central Ni atom bonded only to ligands)
(vi) Heteroleptic:
A coordination compound is called heteroleptic if the central metal ion is bonded to more than one type of ligand.
Examples:
- (Central Co ion bonded to both and ligands)
- (Central Pt atom bonded to both and ligands)
Common mistakes
- Confusing double salts with coordination compounds.
- Misinterpreting primary and secondary valencies.
- Difficulty in identifying ligands and coordination numbers.
- Not understanding the difference in behavior of ions in solution for double salts vs. coordination compounds.
Revision tips
- Focus on understanding Werner's postulates and their limitations.
- Memorize the definitions and examples of key terms like ligands and coordination entities.
- Practice differentiating between double salts and coordination compounds with provided examples.
- Review the chemical formulas and structures of the example compounds.
Practice MCQs
Q1. According to Werner's theory, what do primary valencies correspond to in modern terminology?
Explanation: Primary valencies in Werner's theory are equivalent to the oxidation state of the central metal ion in modern coordination chemistry.
Q2. Which of the following is a characteristic of a double salt in solution?
Explanation: Double salts dissociate into their constituent ions when dissolved in water, thus exhibiting the properties of individual ions.
Q3. In the coordination compound [Cu(NH3)4]SO4 · 5H2O, what is the coordination entity?
Explanation: The coordination entity is the central metal ion and the ligands directly bonded to it, which is [Cu(NH3)4]^2+ in this case.
Q4. A coordination compound where all the ligands are identical is called:
Explanation: Homoleptic complexes are those in which the central metal ion is bonded to only one type of ligand.
Q5. Which of the following is an example of a ligand?
Explanation: Ligands are molecules or ions that donate electron pairs to the central metal atom. CO (carbon monoxide) is a neutral ligand.
Frequently asked questions
What are Werner's postulates regarding coordination compounds?
Werner's postulates state that metal atoms exhibit primary and secondary valencies. Primary valencies are ionizable and correspond to the oxidation state, while secondary valencies are non-ionizable, correspond to the coordination number, and define the geometry of the complex.
Why does FeSO4 solution mixed with (NH4)2SO4 give the test for Fe^2+ ions, but CuSO4 solution mixed with ammonia does not give the test for Cu^2+ ions?
FeSO4 · (NH4)2SO4 · 6H2O is a double salt that dissociates into Fe^2+, NH4+, and SO4^2- ions in solution, giving the test for Fe^2+. CuSO4 mixed with ammonia forms a coordination compound [Cu(NH3)4]SO4 · 5H2O, which in solution exists as [Cu(NH3)4]^2+ and SO4^2- ions, where the Cu^2+ ion is protected by the ligands and does not give the characteristic test.
What is the difference between a coordination entity and a coordination compound?
A coordination entity is a central metal atom or ion bonded to a definite number of ligands, often carrying a charge (e.g., [Ni(NH3)6]^2+). A coordination compound is a neutral compound containing one or more coordination entities (e.g., [Ni(CO)4]).
Define ligand and give examples.
A ligand is an atom, ion, or molecule that donates an electron pair to the central metal atom or ion to form a coordinate covalent bond. Examples include NH3, H2O, Cl-, OH-, CO, and CN-.
What is the coordination number in coordination compounds?
The coordination number is the number of ligand atoms directly bonded to the central metal atom or ion. It represents the number of coordinate bonds formed by the ligands with the central atom.
What is the difference between homoleptic and heteroleptic complexes?
Homoleptic complexes have only one type of ligand attached to the central metal ion (e.g., [Co(NH3)6]^3+). Heteroleptic complexes have more than one type of ligand attached to the central metal ion (e.g., [Co(NH3)4Cl2]^+).
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