CBSE Class 12 Chemistry Chapter 11: Alcohols, Phenols and Ethers NCERT Solutions
CBSE Class 12 Chemistry Chapter 11, Alcohols, Phenols, and Ethers, NCERT Solutions, delves into the essential concepts of these functional groups. The solutions offer clear explanations for various questions, including the monochlorination of toluene, identifying chiral alcohols, understanding the reactivity order in nucleophilic substitution reactions, and the selective oxidation of primary alcohols to aldehydes. Each problem is approached with a step-by-step breakdown, clarifying complex reactions and structural analyses. This resource aims to enhance students' comprehension of reaction mechanisms, stereochemistry, and the characteristic properties of alcohols, phenols, and ethers, serving as a vital aid for effective exam preparation and revision.
Quick info
| Board | CBSE |
|---|---|
| Class | Class 12 |
| Subject | Chemistry Exemplar |
| Session | 2026 |
| Language | English |
| Type | NCERT Solutions |
| Chapter | Chapter 11 |
Chapter summary
Chapter 11 of the CBSE Class 12 Chemistry syllabus deals with Alcohols, Phenols, and Ethers. This NCERT Solutions set specifically addresses the Multiple Choice Questions (MCQs) from the exemplar, covering topics such as the products of toluene monochlorination followed by hydrolysis, determining the number of chiral alcohols for a given molecular formula, the reactivity order of alcohols in reactions with HCl and ZnCl2, and the specific reagents required for oxidizing primary alcohols to aldehydes. The solutions offer clear explanations and reasoning for each question.
Learning outcomes
- Understand the products of electrophilic substitution and hydrolysis reactions involving toluene.
- Identify chiral centers in alcohol molecules and determine the number of chiral isomers.
- Compare the reactivity of primary, secondary, and tertiary alcohols in nucleophilic substitution reactions.
- Differentiate between oxidizing agents that produce aldehydes and those that produce carboxylic acids from alcohols.
- Apply knowledge of reaction mechanisms to predict products and explain reactivity trends.
Topics covered
Paper topics
- Monochlorination of Toluene
- Hydrolysis of Benzyl Chloride
- Benzyl Alcohol Formation
- Chirality in Alcohols
- Isomers of Butanol
- Chiral Carbon Atom
- Reactivity of Alcohols
- Nucleophilic Substitution
- Carbocation Stability
- Oxidation of Primary Alcohols
- Aldehyde Synthesis
- Pyridinium Chlorochromate (PCC)
Important topics
- Chirality in Alcohols
- Reactivity Order of Alcohols (1°, 2°, 3°)
- Selective Oxidation of Primary Alcohols to Aldehydes
- Reaction of Toluene with Chlorine and NaOH
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Questions and Solutions
MCQ 1
- o-cresol
- m-cresol
- 2, 4- dihydroxytoluene
- benzyl alcohol
MCQ 2
- 1
- 2
- 3
- 4
The possible structural isomers of butanol () are:
- Butan-1-ol: . None of the carbon atoms are bonded to four different groups.
- Butan-2-ol: . The second carbon atom is bonded to a hydrogen atom, a hydroxyl group, a methyl group (), and an ethyl group (). Since these four groups are different, this carbon is a chiral center, making butan-2-ol chiral.
- 2-Methylpropan-1-ol: . None of the carbon atoms are bonded to four different groups.
- 2-Methylpropan-2-ol: . The carbon atom bonded to the hydroxyl group is bonded to three methyl groups and no hydrogen, so it cannot be chiral.
Therefore, there is only one chiral alcohol with the molecular formula . The correct option is (a).
MCQ 3
(a)
(b)
(c)
(d)
The stability of carbocations follows the order: 3^{\circ} > 2^{\circ} > 1^{\circ}. Tertiary carbocations are the most stable due to hyperconjugation and inductive effects from the alkyl groups. Secondary carbocations are less stable, and primary carbocations are the least stable.
Since the reaction proceeds through carbocation intermediates, the reactivity of alcohols will be directly proportional to the stability of the carbocation they form. Therefore, tertiary alcohols react fastest, followed by secondary alcohols, and then primary alcohols.
The order of reactivity is: 3^{\circ} \text{ alcohol} > 2^{\circ} \text{ alcohol} > 1^{\circ} \text{ alcohol}.
Thus, the correct option is (c).MCQ 4
(a) catalytic hydrogenation
(b) treatment with
(c) treatment with pyridinium chlorochromate
(d) treatment with
(a) Catalytic hydrogenation is a reduction process, not oxidation.
(b) Lithium aluminum hydride (LiAlH_4) is a strong reducing agent and would not convert an alcohol to an aldehyde.
(c) Pyridinium chlorochromate (PCC) is a mild oxidizing agent specifically used to oxidize primary alcohols to aldehydes and secondary alcohols to ketones. It is dissolved in a suitable solvent like dichloromethane (CH_2Cl_2).
The reaction is: CH3CH2OH⟶PCCCH3CHO\mathrm{CH_3CH_2OH} \xrightarrow{\mathrm{PCC}} \mathrm{CH_3CHO}
(d) Potassium permanganate () is a strong oxidizing agent. In neutral, acidic, or basic conditions, it would oxidize primary alcohols all the way to carboxylic acids ().
Therefore, the correct reagent to convert ethanol to ethanal is pyridinium chlorochromate (PCC).Common mistakes
- Incorrectly identifying chiral centers in alcohol structures.
- Confusing the reactivity order of alcohols with different reaction conditions.
- Selecting the wrong oxidizing agent for selective oxidation of alcohols.
- Misinterpreting the products of substitution reactions on aromatic compounds.
Revision tips
- Review the definitions and criteria for chirality in organic molecules.
- Memorize the reactivity order of alcohols (1°, 2°, 3°) for common reactions like substitution.
- Understand the specific roles of different oxidizing agents (PCC, KMnO4) in alcohol oxidation.
- Practice drawing reaction mechanisms to solidify understanding of product formation.
Practice MCQs
Q1. Monochlorination of toluene in sunlight followed by hydrolysis with aqueous sodium hydroxide yields:
Explanation: Monochlorination of toluene in sunlight primarily occurs at the benzylic carbon, forming benzyl chloride. Subsequent hydrolysis of benzyl chloride with aqueous NaOH involves a nucleophilic substitution reaction, replacing the chlorine atom with a hydroxyl group to yield benzyl alcohol.
Q2. How many alcohols with the molecular formula C4H10O are chiral in nature?
Explanation: The molecular formula C4H10O corresponds to several isomers of butanol. Among these, butan-2-ol (CH3CH2CH(OH)CH3) is the only chiral alcohol because its second carbon atom is bonded to four different groups: a methyl group, an ethyl group, a hydrogen atom, and a hydroxyl group.
Q3. What is the correct order of reactivity of alcohols in the reaction R-OH + HCl --(ZnCl2)--> R-Cl + H2O?
Explanation: This reaction proceeds via a nucleophilic substitution mechanism involving carbocation intermediates. Tertiary alcohols are most reactive because they form the most stable tertiary carbocations. Secondary alcohols form less stable secondary carbocations, and primary alcohols form the least stable primary carbocations. Therefore, the reactivity order is 3° > 2° > 1°.
Q4. Ethanol (CH3CH2OH) can be converted into ethanal (CH3CHO) by:
Explanation: Pyridinium chlorochromate (PCC) is a mild oxidizing agent that selectively oxidizes primary alcohols to aldehydes without further oxidation to carboxylic acids. Catalytic hydrogenation and LiAlH4 are reducing agents. KMnO4 is a strong oxidizing agent that would oxidize ethanol to ethanoic acid.
Frequently asked questions
What is the main product when toluene undergoes monochlorination in sunlight followed by hydrolysis with aqueous NaOH?
The main product is benzyl alcohol. Monochlorination in sunlight yields benzyl chloride, which upon hydrolysis with aqueous NaOH gives benzyl alcohol.
How can we determine if an alcohol is chiral?
An alcohol is chiral if its carbon atom bonded to the hydroxyl group (the carbinol carbon) is attached to four different atoms or groups. This carbon is called a chiral or asymmetric carbon.
Which type of alcohol is most reactive towards substitution with HCl in the presence of ZnCl2?
Tertiary alcohols (3°) are the most reactive because they form the most stable tertiary carbocation intermediate, which facilitates the nucleophilic substitution reaction.
What is the role of Pyridinium Chlorochromate (PCC) in the oxidation of alcohols?
PCC is a mild oxidizing agent that selectively oxidizes primary alcohols to aldehydes and secondary alcohols to ketones. It prevents further oxidation to carboxylic acids.
How many chiral alcohols exist for the molecular formula C4H10O?
There is only one chiral alcohol with the molecular formula C4H10O, which is butan-2-ol.
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