CBSE Class 12 Chemistry Chapter 5 Surface Chemistry NCERT Solutions
CBSE Class 12 Chemistry, Chapter 5: Surface Chemistry introduces students to the fascinating world of interactions occurring at surfaces. This chapter explores key concepts such as adsorption, differentiating between chemisorption and physisorption, and highlights the critical role of surface area. It also delves into the mechanisms of catalysis, including homogeneous and heterogeneous catalysis, and examines specific industrial applications like the Haber's process for ammonia synthesis. The Hardy-Schulze law, which explains the coagulation of colloidal particles, and the concept of autocatalysis are also discussed. Understanding these principles is fundamental for comprehending various chemical phenomena and their applications in diverse fields. These solutions aim to provide clear and concise explanations for intext questions, reinforcing learning and aiding in exam preparation.
Quick info
| Board | CBSE |
|---|---|
| Class | Class 12 |
| Subject | Chemiry |
| Session | 2026 |
| Language | English |
| Type | NCERT Solutions |
| Chapter | Chapter 5: Surface Chemistry - Intext Questions Solutions |
Chapter summary
This chapter's NCERT Solutions focus on intext questions related to Surface Chemistry. It explains the characteristics of chemisorption and physisorption, the impact of temperature and surface area on adsorption, and the significance of catalyst poisoning in processes like Haber's. The solutions also cover autocatalysis and the Hardy-Schulze law, offering a modified perspective. These explanations are vital for understanding the fundamental concepts of adsorption, catalysis, and colloidal chemistry.
Learning outcomes
- Understand the characteristics of chemisorption and physisorption.
- Explain the effect of temperature and surface area on adsorption.
- Identify the role of catalysts and catalyst poisons in chemical reactions.
- Explain the concept of autocatalysis with an example.
- Understand and apply the Hardy-Schulze law and its modification.
Topics covered
Paper topics
- Adsorption
- Physisorption
- Chemisorption
- Factors affecting adsorption (Surface area, Temperature)
- Catalysis
- Catalyst poisons
- Haber's Process
- Autocatalysis
- Hardy-Schulze Law
- Desorption
Important topics
- Physisorption vs. Chemisorption
- Factors affecting Adsorption
- Role of Catalysts
- Hardy-Schulze Law
- Autocatalysis
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Questions and Solutions
Question 5.1
- High Specificity: Chemisorption is highly specific. It occurs only when there is a strong possibility of forming chemical bonds between the surface of the adsorbent and the molecules of the adsorbate. For example, oxygen is adsorbed on metals, but hydrogen is not, due to the difference in chemical bonding possibilities.
- Irreversibility: Chemisorption is often irreversible or only partially reversible because it involves the formation of strong chemical bonds, similar to chemical reactions.
Question 5.2
Question 5.3
Question 5.4
Question 5.5
Ester + Water $\rightarrow$ Acid + Alcohol
Initially, the concentration of the acid catalyst is low (or zero if no external acid is added), so the reaction proceeds slowly. However, the reaction itself produces an acid (one of the products). This newly formed acid acts as a catalyst for the ester hydrolysis. As the reaction progresses, the concentration of this autocatalyst increases, leading to a progressive increase in the reaction rate. Thus, the ester hydrolysis starts slow and becomes faster over time due to autocatalysis.Question 5.6
Question 5.7
Question 5.8
Common mistakes
- Confusing chemisorption and physisorption characteristics.
- Not understanding the effect of temperature on adsorption equilibrium.
- Incorrectly applying the Hardy-Schulze law without considering ion size.
- Overlooking the role of desorption in catalysis.
Revision tips
- Focus on the key differences between physisorption and chemisorption.
- Review the examples of catalysis and catalyst poisoning.
- Practice applying the Hardy-Schulze law to different electrolyte combinations.
- Understand the concept of autocatalysis and its mechanism.
Practice MCQs
Q1. Which of the following is a characteristic of chemisorption?
Explanation: Chemisorption is highly specific because it involves the formation of chemical bonds between the adsorbent and adsorbate, which is not always possible.
Q2. Why does physisorption decrease with increasing temperature?
Explanation: Physisorption is an exothermic process. According to Le-Chatelier's principle, increasing the temperature shifts the equilibrium to the left, decreasing the extent of adsorption.
Q3. Powdered substances are better adsorbents because:
Explanation: Powdering a substance significantly increases its surface area, leading to more effective adsorption, especially physisorption.
Q4. In Haber's process for ammonia synthesis, why is CO removed?
Explanation: Carbon monoxide (CO) acts as a poison for the iron catalyst used in Haber's process, reducing its activity and efficiency.
Q5. What is an autocatalyst?
Explanation: An autocatalyst is a substance that acts as a catalyst for a reaction and is also one of the products formed during that reaction.
Frequently asked questions
What are the main differences between physisorption and chemisorption?
Physisorption is weak, reversible, non-specific, and occurs at low temperatures, while chemisorption is strong, often irreversible, highly specific, and can occur at higher temperatures due to chemical bond formation.
Why is a larger surface area important for adsorption?
Adsorption occurs on the surface of the adsorbent. A larger surface area provides more sites for the adsorbate molecules to attach, thus increasing the extent of adsorption.
What is the significance of desorption in catalysis?
Desorption is crucial in catalysis as it removes the product molecules from the catalyst's surface, freeing up active sites for fresh reactant molecules to adsorb and react.
How does the Hardy-Schulze law relate to flocculation?
The Hardy-Schulze law states that the flocculating power of an electrolyte is directly related to the magnitude of the charge on the ion that has the opposite sign to that of the colloid.
Can you give an example of autocatalysis?
Yes, the hydrolysis of esters is a common example where the acid produced acts as an autocatalyst, speeding up the reaction over time.
Why is CO removed in Haber's process?
CO is removed because it acts as a catalyst poison, deactivating the iron catalyst used in the synthesis of ammonia.
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