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Question 13.1: Classify the following amines as primary, secondary or tertiary: (i) (ii) (iii) (C 2 H 5 ) 2 CHNH 2 (iv) (C 2 H 5 ) 2 NH Answer Primary: (i) and (iii) Secondary: (iv) Tertiary: (ii) Question 13.2: (i) Write structures of different isomeric amines corresponding to the molecular formula, C 4 H 11 N (ii) Write IUPAC names of all the isomers. (iii) What type of isomerism is exhibited by different pairs of amines? Answer (i), (ii) The structures and their IUPAC names of different isomeric amines corresponding to the molecular formula, C 4 H 11 N are given below: (a) CH 3 -CH 2 -CH 2 -CH 2 -NH 2 Butanamine (1 0 ) (b) Butan-2-amine (1 0 ) Page 1 of 35

(c) 2-Methylpropanamine (1 0 ) (d) 2-Methylpropan-2-amine (1 0 ) (e) CH 3 -CH 2 -CH 2 -NH-CH 3 N-Methylpropanamine (2 0 ) (f) CH 3 -CH 2 -NH-CH 2 -CH 3 N-Ethylethanamine (2 0 ) (g) N-Methylpropan-2-amine (2 0 ) (h) N,N-Dimethylethanamine (3 ) (iii) The pairs (a) and (b) and (e) and (g) exhibit position isomerism. The pairs (a) and (c); (a) and (d); (b) and (c); (b) and (d) exhibit chain isomerism. The pairs (e) and (f) and (f) and (g) exhibit metamerism. All primary amines exhibit functional isomerism with secondary and tertiary amines and vice-versa. Question 13.3: How will you convert? (i) Benzene into aniline (ii) Benzene into N, N-dimethylaniline (iii) Cl (CH 2 ) 4 Cl into hexan-1, 6-diamine? Answer Page 2 of 35

(i) (ii) (iii) Question 13.4: Arrange the following in increasing order of their basic strength: (i) C 2 H 5 NH 2, C 6 H 5 NH 2, NH 3, C 6 H 5 CH 2 NH 2 and (C 2 H 5 ) 2 NH (ii) C 2 H 5 NH 2, (C 2 H 5 ) 2 NH, (C 2 H 5 ) 3 N, C 6 H 5 NH 2 (iii) CH 3 NH 2, (CH 3 ) 2 NH, (CH 3 ) 3 N, C 6 H 5 NH 2, C 6 H 5 CH 2 NH 2. Answer (i) Considering the inductive effect of alkyl groups, NH 3, C 2 H 5 NH 2, and (C 2 H 5 ) 2 NH can be arranged in the increasing order of their basic strengths as: Again, C 6 H 5 NH 2 has proton acceptability less than NH 3. Thus, we have: Page 3 of 35

Due to the I effect of C 6 H 5 group, the electron density on the N-atom in C 6 H 5 CH 2 NH 2 is lower than that on the N-atom in C 2 H 5 NH 2, but more than that in NH 3. Therefore, the given compounds can be arranged in the order of their basic strengths as: (ii) Considering the inductive effect and the steric hindrance of the alkyl groups, C 2 H 5 NH 2, (C 2 H 5 ) 2 NH 2, and their basic strengths as follows: Again, due to the R effect of C 6 H 5 group, the electron density on the N atom in C 6 H 5 NH 2 is lower than that on the N atom in C 2 H 5 NH 2. Therefore, the basicity of C 6 H 5 NH 2 is lower than that of C 2 H 5 NH 2. Hence, the given compounds can be arranged in the increasing order of their basic strengths as follows: (iii) Considering the inductive effect and the steric hindrance of alkyl groups, CH 3 NH 2, (CH 3 ) 2 NH, and (CH 3 ) 3 N can be arranged in the increasing order of their basic strengths as: In C 6 H 5 NH 2, N is directly attached to the benzene ring. Thus, the lone pair of electrons on the N atom is delocalized over the benzene ring. In C 6 H 5 CH 2 NH 2, N is not directly attached to the benzene ring. Thus, its lone pair is not delocalized over the benzene ring. Therefore, the electrons on the N atom are more easily available for protonation in C 6 H 5 CH 2 NH 2 than in C 6 H 5 NH 2 i.e., C 6 H 5 CH 2 NH 2 is more basic than C 6 H 5 NH 2. Again, due to the I effect of C 6 H 5 group, the electron density on the N atom in C 6 H 5 CH 2 NH 2 is lower than that on the N atom in (CH 3 ) 3 N. Therefore, (CH 3 ) 3 N is more basic than C 6 H 5 CH 2 NH 2. Thus, the given compounds can be arranged in the increasing order of their basic strengths as follows. Question 13.5: Complete the following acid-base reactions and name the products: (i) CH 3 CH 2 CH 2 NH 2 + HCl (ii) (C 2 H 5 ) 3 N + HCl Page 4 of 35

Answer (i) (ii) Question 13.6: Write reactions of the final alkylation product of aniline with excess of methyl iodide in the presence of sodium carbonate solution. Answer Aniline reacts with methyl iodide to produce N, N-dimethylaniline. With excess methyl iodide, in the presence of Na2CO3 solution, N, N-dimethylaniline produces N, N, N trimethylanilinium carbonate. Question 13.7: Write chemical reaction of aniline with benzoyl chloride and write the name of the product obtained. Answer Page 5 of 35

Question 13.8: Write structures of different isomers corresponding to the molecular formula, C 3 H 9 N. Write IUPAC names of the isomers which will liberate nitrogen gas on treatment with nitrous acid. Answer The structures of different isomers corresponding to the molecular formula, C 3 H 9 N are given below: (a) Propan-1-amine (1 0 ) (b) Propan-2-amine (1 0 ) (c) (d) N,N-Dimethylmethanamine (3 0 ) Page 6 of 35

1 0 amines, (a) propan-1-amine, and (b) Propan-2-amine will liberate nitrogen gas on treatment with nitrous acid. Question 13.9: Convert (i) 3-Methylaniline into 3-nitrotoluene. (ii) Aniline into 1,3,5-tribromobenzene. Answer (i) (ii) Page 7 of 35

Question 13.1: Write IUPAC names of the following compounds and classify them into primary, secondary and tertiary amines. (i) (CH 3 ) 2 CHNH 2 (ii) CH 3 (CH 2 ) 2 NH 2 (iii) CH 3 NHCH(CH 3 ) 2 (iv) (CH 3 ) 3 CNH 2 (v) C 6 H 5 NHCH 3 (vi) (CH 3 CH 2 ) 2 NCH 3 (vii) m BrC 6 H 4 NH 2 Answer (i) 1-Methylethanamine (1 0 amine) (ii) Propan-1-amine (1 0 amine) (iii) N Methyl-2-methylethanamine (2 0 amine) (iv) 2-Methylpropan-2-amine (1 0 amine) (v) N Methylbenzamine or N-methylaniline (2 0 amine) (vi) N-Ethyl-N-methylethanamine (3 0 amine) (vii) 3-Bromobenzenamine or 3-bromoaniline (1 0 amine) Question 13.2: Give one chemical test to distinguish between the following pairs of compounds. (i) Methylamine and dimethylamine (ii) Secondary and tertiary amines (iii) Ethylamine and aniline Page 8 of 35

(iv) Aniline and benzylamine (v) Aniline and N-methylaniline. Answer (i) Methylamine and dimethylamine can be distinguished by the carbylamine test. Carbylamine test: Aliphatic and aromatic primary amines on heating with chloroform and ethanolic potassium hydroxide form foul-smelling isocyanides or carbylamines. Methylamine (being an aliphatic primary amine) gives a positive carbylamine test, but dimethylamine does not. (ii) Secondary and tertiary amines can be distinguished by allowing them to react with Hinsberg s reagent (benzenesulphonyl chloride, C 6 H 5 SO 2 Cl). Secondary amines react with Hinsberg s reagent to form a product that is insoluble in an alkali. For example, N, N diethylamine reacts with Hinsberg s reagent to form N, N diethylbenzenesulphonamide, which is insoluble in an alkali. Tertiary amines, however, do not react with Hinsberg s reagent. (iii) Ethylamine and aniline can be distinguished using the azo-dye test. A dye is obtained when aromatic amines react with HNO 2 (NaNO 2 + dil.hcl) at 0-5 C, followed by a reaction with the alkaline solution of 2-naphthol. The dye is usually yellow, red, or orange in colour. Aliphatic amines give a brisk effervescence due (to the evolution of N 2 gas) under similar conditions. Page 9 of 35

(iv) Aniline and benzylamine can be distinguished by their reactions with the help of nitrous acid, which is prepared in situ from a mineral acid and sodium nitrite. Benzylamine reacts with nitrous acid to form unstable diazonium salt, which in turn gives alcohol with the evolution of nitrogen gas. On the other hand, aniline reacts with HNO 2 at a low temperature to form stable diazonium salt. Thus, nitrogen gas is not evolved. (v) Aniline and N-methylaniline can be distinguished using the Carbylamine test. Primary amines, on heating with chloroform and ethanolic potassium hydroxide, form foulsmelling isocyanides or carbylamines. Aniline, being an aromatic primary amine, gives positive carbylamine test. However, N-methylaniline, being a secondary amine does not. Page 10 of 35

Question 13.3: Account for the following: (i) pk b of aniline is more than that of methylamine. (ii) Ethylamine is soluble in water whereas aniline is not. (iii) Methylamine in water reacts with ferric chloride to precipitate hydrated ferric oxide. (iv) Although amino group is o, p directing in aromatic electrophilic substitution reactions, aniline on nitration gives a substantial amount of m-nitroaniline. (v) Aniline does not undergo Friedel-Crafts reaction. (vi) Diazonium salts of aromatic amines are more stable than those of aliphatic amines. (vii) Gabriel phthalimide synthesis is preferred for synthesising primary amines. Answer (i) pk b of aniline is more than that of methylamine: Aniline undergoes resonance and as a result, the electrons on the N-atom are delocalized over the benzene ring. Therefore, the electrons on the N-atom are less available to donate. On the other hand, in case of methylamine (due to the +I effect of methyl group), the electron density on the N-atom is increased. As a result, aniline is less basic than methylamine. Thus, pk b of aniline is more than that of methylamine. (ii) Ethylamine is soluble in water whereas aniline is not: Ethylamine when added to water forms intermolecular H bonds with water. Hence, it is soluble in water. Page 11 of 35

But aniline does not undergo H bonding with water to a very large extent due to the presence of a large hydrophobic C 6 H 5 group. Hence, aniline is insoluble in water. (iii) Methylamine in water reacts with ferric chloride to precipitate hydrated ferric oxide: Due to the +I effect of CH 3 group, methylamine is more basic than water. Therefore, in water, methylamine produces OH ions by accepting H + ions from water. Ferric chloride (FeCl 3 ) dissociates in water to form Fe 3+ and Cl ions. Then, OH ion reacts with Fe 3+ ion to form a precipitate of hydrated ferric oxide. (iv) Although amino group is o,p directing in aromatic electrophilic substitution reactions, aniline on nitration gives a substantial amount of m- nitroaniline: Nitration is carried out in an acidic medium. In an acidic medium, aniline is protonated to give anilinium ion (which is meta-directing). Page 12 of 35

For this reason, aniline on nitration gives a substantial amount of m-nitroaniline. (v) Aniline does not undergo Friedel-Crafts reaction: A Friedel-Crafts reaction is carried out in the presence of AlCl 3. But AlCl 3 is acidic in nature, while aniline is a strong base. Thus, aniline reacts with AlCl 3 to form a salt (as shown in the following equation). Due to the positive charge on the N-atom, electrophilic substitution in the benzene ring is deactivated. Hence, aniline does not undergo the Friedel-Crafts reaction. (vi) Diazonium salts of aromatic amines are more stable than those of aliphatic amines: The diazonium ion undergoes resonance as shown below: This resonance accounts for the stability of the diazonium ion. Hence, diazonium salts of aromatic amines are more stable than those of aliphatic amines. (vii) Gabriel phthalimide synthesis is preferred for synthesising primary amines: Gabriel phthalimide synthesis results in the formation of 1 amine only. 2 or 3 amines are not formed in this synthesis. Thus, a pure 1 amine can be obtained. Therefore, Gabriel phthalimide synthesis is preferred for synthesizing primary amines. Question 13.4: Page 13 of 35

Arrange the following: (i) In decreasing order of the pk b values: C 2 H 5 NH 2, C 6 H 5 NHCH 3, (C 2 H 5 ) 2 NH and C 6 H 5 NH 2 (ii) In increasing order of basic strength: C 6 H 5 NH 2, C 6 H 5 N(CH 3 ) 2, (C 2 H 5 ) 2 NH and CH 3 NH 2 (iii) In increasing order of basic strength: (a) Aniline, p-nitroaniline and p-toluidine (b) C 6 H 5 NH 2, C 6 H 5 NHCH 3, C 6 H 5 CH 2 NH 2. (iv) In decreasing order of basic strength in gas phase: C 2 H 5 NH 2, (C 2 H 5 ) 2 NH, (C 2 H 5 ) 3 N and NH 3 (v) In increasing order of boiling point: C 2 H 5 OH, (CH 3 ) 2 NH, C 2 H 5 NH 2 (vi) In increasing order of solubility in water: C 6 H 5 NH 2, (C 2 H 5 ) 2 NH, C 2 H 5 NH 2. Answer (i) In C 2 H 5 NH 2, only one C 2 H 5 group is present while in (C 2 H 5 ) 2 NH, two C 2 H 5 groups are present. Thus, the +I effect is more in (C 2 H 5 ) 2 NH than in C 2 H 5 NH 2. Therefore, the electron density over the N-atom is more in (C 2 H 5 ) 2 NH than in C 2 H 5 NH 2. Hence, (C 2 H 5 ) 2 NH is more basic than C 2 H 5 NH 2. Also, both C 6 H 5 NHCH 3 and C 6 H 5 NH 2 are less basic than (C 2 H 5 ) 2 NH and C 2 H 5 NH 2 due to the delocalization of the lone pair in the former two. Further, among C 6 H 5 NHCH 3 and C 6 H 5 NH 2, the former will be more basic due to the +T effect of CH 3 group. Hence, the order of increasing basicity of the given compounds is as follows: C 6 H 5 NH 2 < C 6 H 5 NHCH 3 < C 2 H 5 NH 2 < (C 2 H 5 ) 2 NH We know that the higher the basic strength, the lower is the pk b values. C 6 H 5 NH 2 > C 6 H 5 NHCH 3 > C 2 H 5 NH 2 > (C 2 H 5 ) 2 NH (ii) C 6 H 5 N(CH 3 ) 2 is more basic than C 6 H 5 NH 2 due to the presence of the +I effect of two CH 3 groups in C 6 H 5 N(CH 3 ) 2. Further, CH 3 NH 2 contains one CH 3 group while (C 2 H 5 ) 2 NH contains two C 2 H 5 groups. Thus, (C 2 H 5 ) 2 NH is more basic than C 2 H 5 NH 2. Now, C 6 H 5 N(CH 3 ) 2 is less basic than CH 3 NH 2 because of the R effect of C 6 H 5 group. Hence, the increasing order of the basic strengths of the given compounds is as follows: C 6 H 5 NH 2 < C 6 H 5 N(CH 3 ) 2 < CH 3 NH 2 < (C 2 H 5 ) 2 NH (iii) (a) Page 14 of 35

In p-toluidine, the presence of electron-donating CH 3 group increases the electron density on the N-atom. Thus, p-toluidine is more basic than aniline. On the other hand, the presence of electron-withdrawing NO 2 group decreases the electron density over the N atom in p-nitroaniline. Thus, p- nitroaniline is less basic than aniline. Hence, the increasing order of the basic strengths of the given compounds is as follows: p-nitroaniline < Aniline < p-toluidine (b) C 6 H 5 NHCH 3 is more basic than C 6 H 5 NH 2 due to the presence of electron-donating CH 3 group in C 6 H 5 NHCH 3. Again, in C 6 H 5 NHCH 3, C 6 H 5 group is directly attached to the N-atom. However, it is not so in C 6 H 5 CH 2 NH 2. Thus, in C 6 H 5 NHCH 3, the R effect of C 6 H 5 group decreases the electron density over the N-atom. Therefore, C 6 H 5 CH 2 NH 2 is more basic than C 6 H 5 NHCH 3. Hence, the increasing order of the basic strengths of the given compounds is as follows: C 6 H 5 NH 2 < C 6 H 5 NHCH 3 < C 6 H 5 CH 2 NH 2. (iv) In the gas phase, there is no solvation effect. As a result, the basic strength mainly depends upon the +I effect. The higher the +I effect, the stronger is the base. Also, the greater the number of alkyl groups, the higher is the +I effect. Therefore, the given compounds can be arranged in the decreasing order of their basic strengths in the gas phase as follows: (C 2 H 5 ) 3 N > (C 2 H 5 ) 2 NH > C 2 H 5 NH 2 > NH 3 (v) The boiling points of compounds depend on the extent of H-bonding present in that compound. The more extensive the H-bonding in the compound, the higher is the boiling point. (CH 3 ) 2 NH contains only one H atom whereas C 2 H 5 NH 2 contains two H-atoms. Then, C 2 H 5 NH 2 undergoes more extensive H-bonding than (CH 3 ) 2 NH. Hence, the boiling point of C 2 H 5 NH 2 is higher than that of (CH 3 ) 2 NH. Page 15 of 35

Further, O is more electronegative than N. Thus, C 2 H 5 OH forms stronger H bonds than C 2 H 5 NH 2. As a result, the boiling point of C 2 H 5 OH is higher than that of C 2 H 5 NH 2 and (CH 3 ) 2 NH. Now, the given compounds can be arranged in the increasing order of their boiling points as follows: (CH 3 ) 2 NH < C 2 H 5 NH 2 < C 2 H 5 OH (vi) The more extensive the H bonding, the higher is the solubility. C 2 H 5 NH 2 contains two H-atoms whereas (C 2 H 5 ) 2 NH contains only one H-atom. Thus, C 2 H 5 NH 2 undergoes more extensive H bonding than (C 2 H 5 ) 2 NH. Hence, the solubility in water of C 2 H 5 NH 2 is more than that of (C 2 H 5 ) 2 NH. Further, the solubility of amines decreases with increase in the molecular mass. This is because the molecular mass of amines increases with an increase in the size of the hydrophobic part. The molecular mass of C 6 H 5 NH 2 is greater than that of C 2 H 5 NH 2 and (C 2 H 5 ) 2 NH. Hence, the increasing order of their solubility in water is as follows: C 6 H 5 NH 2 < (C 2 H 5 ) 2 NH < C 2 H 5 NH 2 Question 13.5: How will you convert: (i) Ethanoic acid into methanamine (ii) Hexanenitrile into 1-aminopentane (iii) Methanol to ethanoic acid (iv) Ethanamine into methanamine (v) Ethanoic acid into propanoic acid (vi) Methanamine into ethanamine (vii) Nitromethane into dimethylamine (viii) Propanoic acid into ethanoic acid Answer (i) Page 16 of 35

(ii) (iii) (iv) (v) (vi) Page 17 of 35

(vii) (viii) Question 13.6: Describe a method for the identification of primary, secondary and tertiary amines. Also write chemical equations of the reactions involved. Answer Primary, secondary and tertiary amines can be identified and distinguished by Hinsberg s test. In this test, the amines are allowed to react with Hinsberg s reagent, benzenesulphonyl chloride (C 6 H 5 SO 2 Cl). The three types of amines react differently with Hinsberg s reagent. Therefore, they can be easily identified using Hinsberg s reagent. Primary amines react with benzenesulphonyl chloride to form N-alkylbenzenesulphonyl amide which is soluble in alkali. Page 18 of 35

Due to the presence of a strong electron-withdrawing sulphonyl group in the sulphonamide, the H atom attached to nitrogen can be easily released as proton. So, it is acidic and dissolves in alkali. Secondary amines react with Hinsberg s reagent to give a sulphonamide which is insoluble in alkali. There is no H atom attached to the N-atom in the sulphonamide. Therefore, it is not acidic and insoluble in alkali. On the other hand, tertiary amines do not react with Hinsberg s reagent at all. Question 13.7: Write short notes on the following: (i) Carbylamine reaction (ii) Diazotisation (iii) Hofmann s bromamide reaction (iv) Coupling reaction (v) Ammonolysis (vi) Acetylation (vii) Gabriel phthalimide synthesis. Answer (i) Carbylamine reaction Carbylamine reaction is used as a test for the identification of primary amines. When aliphatic and aromatic primary amines are heated with chloroform and ethanolic potassium hydroxide, carbylamines (or isocyanides) are formed. These carbylamines have very unpleasant odours. Secondary and tertiary amines do not respond to this test. Page 19 of 35

For example, (ii) Diazotisation Aromatic primary amines react with nitrous acid (prepared in situ from NaNO 2 and a mineral acid such as HCl) at low temperatures (273-278 K) to form diazonium salts. This conversion of aromatic primary amines into diazonium salts is known as diazotization. For example, on treatment with NaNO 2 and HCl at 273 278 K, aniline produces benzenediazonium chloride, with NaCl and H 2 O as by-products. (iii) Hoffmann bromamide reaction When an amide is treated with bromine in an aqueous or ethanolic solution of sodium hydroxide, a primary amine with one carbon atom less than the original amide is produced. This degradation reaction is known as Hoffmann bromamide reaction. This reaction involves the migration of an alkyl or aryl group from the carbonyl carbon atom of the amide to the nitrogen atom. For example, Page 20 of 35

(iv) Coupling reaction The reaction of joining two aromatic rings through the N=N bond is known as coupling reaction. Arenediazonium salts such as benzene diazonium salts react with phenol or aromatic amines to form coloured azo compounds. It can be observed that, the para-positions of phenol and aniline are coupled with the diazonium salt. This reaction proceeds through electrophilic substitution. (v) Ammonolysis When an alkyl or benzyl halide is allowed to react with an ethanolic solution of ammonia, it undergoes nucleophilic substitution reaction in which the halogen atom is replaced by an amino ( NH 2 ) group. This process of cleavage of the carbon-halogen bond is known as ammonolysis. When this substituted ammonium salt is treated with a strong base such as sodium hydroxide, amine is obtained. Though primary amine is produced as the major product, this process produces a mixture of primary, secondary and tertiary amines, and also a quaternary ammonium salt as shown. Page 21 of 35

(vi) Acetylation Acetylation (or ethanoylation) is the process of introducing an acetyl group into a molecule. Aliphatic and aromatic primary and secondary amines undergo acetylation reaction by nucleophilic substitution when treated with acid chlorides, anhydrides or esters. This reaction involves the replacement of the hydrogen atom of NH 2 or > NH group by the acetyl group, which in turn leads to the production of amides. To shift the equilibrium to the right hand side, the HCl formed during the reaction is removed as soon as it is formed. This reaction is carried out in the presence of a base (such as pyridine) which is stronger than the amine. Page 22 of 35

When amines react with benzoyl chloride, the reaction is also known as benzoylation. For example, (vii) Gabriel phthalimide synthesis Gabriel phthalimide synthesis is a very useful method for the preparation of aliphatic primary amines. It involves the treatment of phthalimide with ethanolic potassium hydroxide to form potassium salt of phthalimide. This salt is further heated with alkyl halide, followed by alkaline hydrolysis to yield the corresponding primary amine. Question 13.8: Accomplish the following conversions: (i) Nitrobenzene to benzoic acid (ii) Benzene to m-bromophenol (iii) Benzoic acid to aniline (iv) Aniline to 2,4,6-tribromofluorobenzene (v) Benzyl chloride to 2-phenylethanamine (vi) Chlorobenzene to p-chloroaniline Page 23 of 35

(vii) Aniline to p-bromoaniline (viii) Benzamide to toluene (ix) Aniline to benzyl alcohol. Answer (i) (ii) (iii) Page 24 of 35

(iv) (v) Page 25 of 35

(vi) (vii) Page 26 of 35

(viii) (ix) Page 27 of 35

Question 13.9: Give the structures of A, B and C in the following reactions: (i) (ii) (iii) (iv) (v) (vi) Answer (i) Page 28 of 35

(ii) (iii) (iv) Page 29 of 35

(v) (vi) Question 13.10: An aromatic compound A on treatment with aqueous ammonia and heating forms compound B which on heating with Br 2 and KOH forms a compound C of molecular formula C 6 H 7 N. Write the structures and IUPAC names of compounds A, B and C. Answer It is given that compound C having the molecular formula, C 6 H 7 N is formed by heating compound B with Br 2 and KOH. This is a Hoffmann bromamide degradation reaction. Therefore, compound B is an amide and compound C is an amine. The only amine having the molecular formula, C 6 H 7 N is aniline, (C 6 H 5 NH 2 ). Page 30 of 35

Therefore, compound B (from which C is formed) must be benzamide, (C 6 H 5 CONH 2 ). Further, benzamide is formed by heating compound A with aqueous ammonia. Therefore, compound A must be benzoic acid. The given reactions can be explained with the help of the following equations: Question 13.11: Complete the following reactions: (i) (ii) (iii) (iv) (v) (vi) Page 31 of 35

(vii) Answer (i) (ii) (iii) (iv) (v) (vi) (vii) Page 32 of 35

Question 13.12: Why cannot aromatic primary amines be prepared by Gabriel phthalimide synthesis? Answer Gabriel phthalimide synthesis is used for the preparation of aliphatic primary amines. It involves nucleophilic substitution (S N 2) of alkyl halides by the anion formed by the phthalimide. But aryl halides do not undergo nucleophilic substitution with the anion formed by the phthalimide. Hence, aromatic primary amines cannot be prepared by this process. Question 13.13: Write the reactions of (i) aromatic and (ii) aliphatic primary amines with nitrous acid. Answer Page 33 of 35

(i) Aromatic amines react with nitrous acid (prepared in situ from NaNO 2 and a mineral acid such as HCl) at 273 278 K to form stable aromatic diazonium salts i.e., NaCl and H 2 O. (ii) Aliphatic primary amines react with nitrous acid (prepared in situ from NaNO 2 and a mineral acid such as HCl) to form unstable aliphatic diazonium salts, which further produce alcohol and HCl with the evolution of N 2 gas. Question 13.14: Give plausible explanation for each of the following: (i) Why are amines less acidic than alcohols of comparable molecular masses? (ii) Why do primary amines have higher boiling point than tertiary amines? (iii) Why are aliphatic amines stronger bases than aromatic amines? Answer (i) Amines undergo protonation to give amide ion. Similarly, alcohol loses a proton to give alkoxide ion. Page 34 of 35

In an amide ion, the negative charge is on the N-atom whereas in alkoxide ion, the negative charge is on the O-atom. Since O is more electronegative than N, O can accommodate the negative charge more easily than N. As a result, the amide ion is less stable than the alkoxide ion. Hence, amines are less acidic than alcohols of comparable molecular masses. (ii) In a molecule of tertiary amine, there are no H atoms whereas in primary amines, two hydrogen atoms are present. Due to the presence of H atoms, primary amines undergo extensive intermolecular H bonding. As a result, extra energy is required to separate the molecules of primary amines. Hence, primary amines have higher boiling points than tertiary amines. (iii) Due to the R effect of the benzene ring, the electrons on the N- atom are less available in case of aromatic amines. Therefore, the electrons on the N-atom in aromatic amines cannot be donated easily. This explains why aliphatic amines are stronger bases than aromatic amines. Page 35 of 35

A. 4-methoxybenzoic acid < benzoic acid < 4-nitrobenzoic acid <4, dinitrobenzoic acid. Level: 1 1. Which acid is stronger and why? F3C C6H4 COO H, CH3 C6H4 COOH A. CF3 has a strong( I) effect. CH3 has a weak (+ I) effect. It stabilises the carboxylate ion Itstabilises the carboxylate ion by dispersing the ve charge.by intensifying the ve charge. Therefore due to greater stability of F3C C6H4 COO (p) ion over CH3 C6H4COO (p) ion, F3C C6H4 COOH is a much stronger acid than CH3 C6H4 COOH. 2. Arrange the following compounds in increasing order of their reactivity towards HCN. Explain it with proper reasoning. Acetaldehyde, Acetone, Di-tert-butyl ketone, Methyl tert-butyl ketone. ANS.Addition of HCN to the carboxyl compounds is a nucleophilic addition reaction. The reactivity towards HCN addition decreases as the + I effect of the alkyl groups increases and/or the steric hindrance to the nucleophilic attack by CN at the carboxyl carbon increases. Thus the reactivity decreases in the order Acetaldehyde, Acetone,, Methyl tert-butyl ketone. Di-tert-butyl ketone CHAPTER-13 AMINES 3 Marks Chapter 1.Gabrielphthalimidesynthesis Gabrielsynthesisisusedforthe preparationof primaryamines.phthalimideontreatmentwith ethanolicpotassiumhydroxideformspotassiumsaltofphthalimidewhichonheatingwith alkyl halide followed by alkaline hydrolysis produces the corresponding primary amine. Aromaticprimary aminescannot bepreparedby thismethodbecausearylhalides donot undergonucleophilicsubstitution withtheanionformedby phthalimide.

2.Hoffmannbromamidedegradationreaction Hoffmanndevelopedamethodforpreparationofprimaryaminesbytreatinganamidewith bromine inan aqueous or ethanolicsolution of sodium hydroxide. The amineso formed containsonecarbonless thanthatpresent intheamide. 3.Carbylaminereaction Aliphaticandaromaticprimaryaminesonheatingwithchloroformandethanolicpotassium hydroxideformisocyanidesorcarbylamineswhicharefoulsmelling substances.secondaryand tertiary aminesdonotshowthisreaction.thisreactionisknownascarbylaminereactionor isocyanidetestandisusedas atest forprimary amines. 4.HinsbergTest:

Benzenesulphonylchloride(C6H5SO2Cl),whichisalsoknownasHinsberg sreagent, reacts with primary andsecondaryamines toformsulphonamides. (a)thereactionof benzenesulphonylchloridewithprimary amine yieldsn-ethylbenzenesulphonylamide. Thehydrogenattachedtonitrogeninsulphonamideisstronglyacidicduetothepresenceof strong electronwithdrawing sulphonylgroup.hence,itis solubleinalkali. (b)inthereactionwithsecondaryamine,n,ndiethylbenzenesulphonamideisformed. SinceN,N-diethylbenzenesulphonamidedoesnotcontainanyhydrogenatomattachedto nitrogenatom,itisnotacidic andhenceinsoluble inalkali. (c) Tertiary aminesdonot react with benzenesulphonylchloride. Thisproperty ofamines reacting withbenzenesulphonylchlorideinadifferentmannerisusedforthedistinctionof primary, secondary andtertiary aminesandalsofortheseparationof amixtureofamines. 5.SandmeyerReaction TheCl,Br andcn nucleophilescaneasilybeintroducedinthebenzeneringofdiazoniumsalts inthepresenceof Cu(I)ion.

6.GattermanReaction Chlorineorbrominecan beintroducedinthebenzeneringbytreatingthediazoniumsalt solutionwithcorresponding halogenacidinthepresenceof copperpowder. 7.Couplingreactions Theazoproductsobtainedhaveanextendedconjugatesystemhavingboththearomaticrings joined throughthe N=N bond.thesecompoundsareoftencolouredandareusedasdyes. Benzene diazoniumchloride reacts with phenol in which the phenol molecule at its parapositioniscoupledwiththediazoniumsalttoformp-hydroxyazobenzene.thistypeof reaction isknownascoupling reaction. Similarlythereactionofdiazoniumsaltwithaniline yields p-aminoazobenzene. DISTINCTIONBETWEENPAIRSOFCOMPOUNDS Giveonechemicaltesttodistinguishbetweenthe followingpairsof compounds. (i) Methylamineanddimethylamine(ii) Secondaryandtertiaryamines (iii) Ethylamineandaniline

(iv) Anilineand benzylamine (v) Anilineand N-methylaniline. ANS. (i) Methylamineanddimethylaminecanbedistinguishedbythecarbylaminetest. Carbylaminetest:Aliphaticandaromaticprimaryaminesonheatingwithchloroform andethanolicpotassium hydroxideformfoul-smellingisocyanidesorcarbylamines. Methylamine(beinganaliphaticprimaryamine)givesapositivecarbylaminetest,but dimethylaminedoesnot. (ii)secondaryandtertiaryaminescanbedistinguishedbyallowingthemtoreactwith Hinsberg sreagent(benzenesulphonylchloride, C6H5SO2Cl).Secondary amines react withhinsberg sreagenttoformaproductthatisinsoluble inanalkali.forexample,n, N diethylamine reacts with Hinsberg s reagent to form N, N diethylbenzenesulphonamide, which isinsoluble in an alkali. Tertiary amines, however, donot react withhinsberg sreagent. (iii) Ethylamine andaniline canbe distinguished using the azo-dye test. A dyeis obtainedwhenaromaticaminesreactwithhno2 (NaNO2 +dil.hcl)at0-5 C,followed byareactionwiththealkalinesolutionof2-naphthol.the dye isusuallyyellow,red,or orangeincolour.aliphaticamines giveabriskeffervescence due(totheevolutionofn2gas)under similar conditions. (iv)anilineandbenzylaminecanbedistinguishedbytheirreactionswiththehelpof nitrous acid, which is prepared in situ from a mineral acid and sodium nitrite.

Benzylaminereactswithnitrousacidtoformunstablediazoniumsalt,whichinturn withtheevolutionofnitrogengas. givesalcohol Onthe other hand, aniline reactswithhno2 ata low temperature toformstable diazoniumsalt. Thus,nitrogengasisnotevolved. (v) Aniline andn-methylanilinecan be distinguished using the Carbylaminetest. Primaryamines,onheatingwithchloroformandethanolicpotassiumhydroxide,form foulsmellingisocyanidesorcarbylamines.aniline,beinganaromaticprimaryamine, givespositivecarbylaminetest. However,N-methylaniline,beingasecondaryamine doesnot. Q1. Accountforthefollowing: (i)pkbof anilineis morethanthatofmethylamine. REASONINGQUESTIONS (ii)ethylamineis solubleinwaterwhereas anilineis not. (iii)methylamineinwaterreactswithferric chloridetoprecipitatehydratedferric oxide. (iv) Althoughaminogroupiso andp directinginaromatic electrophilicsubstitution reactions,anilineonnitrationgives asubstantialamountof m-nitroaniline. (v) Anilinedoes notundergofriedel-craftsreaction. (vi)diazoniumsaltsof aromatic amines aremorestablethanthoseofaliphatic amines. (vii)gabrielphthalimidesynthesis is preferredforsynthesising primary amines. ANS. (i) pkbofanilineismorethanthat ofmethylamine

Aniline undergoes resonance and as a result, the electrons on the N-atom are delocalized over the benzene ring. Therefore, theelectrons on the N-atom areless availabletodonate. Ontheotherhand,incaseofmethylamine(duetothe+Ieffectofmethylgroup),the electron densityon the N-atom isincreased. As aresult, aniline islessbasicthan methylamine. Thus,pKb ofanilineismorethanthat ofmethylamine. (ii) Ethylamineissolubleinwaterwhereasanilineisnot: EthylaminewhenaddedtowaterformsintermolecularH bondswithwater.hence,it issoluble inwater. ButanilinedoesnotundergoH bondingwithwatertoaverylargeextentduetothe presenceofalargehydrophobic C6H5group. Hence, anilineisinsolubleinwater. (iii) Methylamine inwater reactswithferric chloride toprecipitate hydrated ferric oxide: Duetothe+Ieffect of CH3 group,methylamine ismorebasicthan water. Therefore,in water,methylamineproducesoh ions byacceptingh + ions fromwater. Ferricchloride(FeCl3)dissociatesinwatertoform Fe 3+ andcl ions. Then,OH ionreacts withfe 3+ ionto formaprecipitateofhydratedferricoxide. (iv) Although amino group is o,p directing in aromatic electrophilic substitution reactions,anilineonnitrationgivesasubstantialamount ofm-nitroaniline: Nitrationiscarriedoutinanacidicmedium.Inanacidicmedium,aniline isprotonated to giveaniliniumion(whichismeta-directing).

Forthis reason,anilineonnitrationgivesasubstantialamount ofm-nitroaniline. (v)anilinedoesnotundergofriedel-craftsreaction: AFriedel-CraftsreactioniscarriedoutinthepresenceofAlCl3.ButAlCl3 isacidicin nature,whileanilineisastrongbase.thus,anilinereactswithalcl3 toformasalt(as shown inthefollowingequation). DuetothepositivechargeontheN-atom,electrophilicsubstitutioninthebenzenering isdeactivated. Hence,anilinedoesnotundergotheFriedel-Crafts reaction. (vi) Diazoniumsaltsofaromaticaminesaremorestablethanthoseofaliphaticamines: Thediazoniumionundergoesresonanceasshownbelow: Thisresonanceaccountsforthestabilityofthediazoniumion.Hence,diazoniumsalts ofaromaticaminesaremorestablethanthoseofaliphaticamines. (vii) Gabriel phthalimidesynthesisispreferredfor synthesisingprimaryamines: Gabrielphthalimidesynthesisresultsintheformationof1 amineonly.2 or3 amines arenotformed inthissynthesis.thus,apure1 aminecanbeobtained.therefore, Gabriel phthalimidesynthesisispreferred forsynthesizingprimaryamines. Q2.Why cannotaromaticprimary aminesbe preparedbygabriel phthalimide synthesis? ANS.Gabrielphthalimidesynthesisisusedforthepreparationofaliphaticprimary amines.itinvolvesnucleophilicsubstitution(sn2)ofalkylhalidesbytheanionformed bythephthalimide. Butarylhalidesdonotundergonucleophilicsubstitutionwiththeanionformedbythe phthalimide.

Hence,aromaticprimaryaminescannot beprepared bythisprocess. Q3.Giveplausibleexplanationforeachof thefollowing: (i) Whyareaminesless acidicthanalcoholsof comparablemolecularmasses? (ii)whydoprimaryamineshavehigherboilingpoint thantertiaryamines? (iii)whyarealiphaticaminesstrongerbasesthanaromaticamines? ANS. (i) Aminesundergoprotonationtogiveamideion. Similarly, alcohol losesaprotontogivealkoxide ion. Inanamideion,thenegativechargeisontheN-atomwhereasinalkoxideion,the negative chargeis on the O-atom. Since Ois more electronegative than N, O can accommodatethenegativechargemoreeasilythann.asaresult,theamideionisless stablethanthealkoxideion.hence,aminesarelessacidicthanalcoholsofcomparable molecularmasses. (ii)inamoleculeoftertiaryamine,therearenoh atomswhereasinprimaryamines, twohydrogenatomsarepresent.duetothepresenceofh atoms,primaryamines undergoextensiveintermolecularh bonding. Asa result, extra energy isrequired toseparate the moleculesof primary amines. Hence,primaryamineshavehigherboilingpointsthantertiaryamines. (iii)duetothe Reffectofthebenzenering,theelectronsontheN-atomareless availableincaseofaromaticamines.therefore,theelectronsonthen-atominaromatic aminescannotbe donatedeasily.thisexplainswhyaliphaticaminesarestrongerbases thanaromaticamines. SOLVEDQUESTIONS 1MARKQUESTIONS Q1.GivetheIUPACnameofthecompoundandclassifyintoprimary,secondaryor tertiaryamines. 1-Methylethanamine(1 0 amine) Q2.GivetheIUPACnameofthecompoundandclassifyintoprimary,secondaryor tertiaryamines. Propan-1-amine(1 0 amine) Q3.GivetheIUPACnameofthecompoundandclassifyintoprimary,secondaryor tertiaryamines. N Methyl-2-methylethanamine(2 0 amine)

Q4.GivetheIUPACnameofthecompoundandclassifyintoprimary,secondaryor tertiaryamines. 2-Methylpropan-2-amine(1 0 amine) Q5.GivetheIUPACnameofthecompoundandclassifyintoprimary,secondaryor tertiaryamines. N MethylbenzamineorN-methylaniline(2 0 amine) Q6.Writeshortnoteson diazotization Aromaticprimaryaminesreactwithnitrousacid(preparedinsitufromNaNO2 anda mineralacid suchashcl)atlow temperatures (273-278K) to formdiazoniumsalts. This conversionofaromaticprimaryaminesintodiazoniumsaltsisknownasdiazotization. For example, on treatment with NaNO2and HClat 273 278 K, aniline produces benzenediazoniumchloride, withnacland H2Oasby-products. Q7.Writeshortnotesonammonolysis Whenan alkyl or benzyl halide is allowed to react with an ethanolicsolution of ammonia,itundergoesnucleophilicsubstitutionreactioninwhichthehalogenatomis replacedbyan amino( NH2)group.Thisprocessofcleavageofthecarbon-halogen bondisknownasammonolysis. Whenthissubstitutedammoniumsaltistreatedwithastrongbasesuchassodium hydroxide, amineisobtained. Thoughprimary amineisproducedasthe major product, thisprocessproducesa mixtureofprimary,secondaryandtertiaryamines,andalsoaquaternaryammonium salt

Q8.Writeshortnotesonacetylation. Acetylation (or ethanoylation)is the process of introducing anacetyl group into a molecule. Aliphaticandaromaticprimaryandsecondaryaminesundergoacetylation reactionbynucleophilicsubstitutionwhentreatedwithacidchlorides,anhydridesor esters.thisreactioninvolvesthereplacementofthehydrogenatomof NH2 or>nh groupbytheacetylgroup,whichinturnleadstotheproductionofamides.toshiftthe equilibriumtotherighthandside,thehclformedduringthereactionisremovedas soonasitisformed.thisreactioniscarriedoutinthe presenceofabase(suchas pyridine) whichisstronger thantheamine. pyridine C2 H5NH2+CH3COCl--------- C2H5NHCOCH3+HCl Q9.Whyareamines basic incharacter? ANS.Likeammonia,thenitrogenatominaminesRNH2 istrivalentandbearsan pairofelectrons.thusitactslikealewisbaseanddonatesthepairofelectronstoelectronspecieswhichfurtherincreases dueto+ieffectof alkylradical. unshared deficient Q10. Arrangethefollowingindecreasingorderof theirbasicstrength: C6H5NH2,C2H5 NH2,(C2H5)2NH,NH3 Thedecreasingorderof basicstrengthoftheaboveaminesandammonia followsthefollowingorder: (C2H5)2NH>C2H5 >C6H5NH2 NH2>NH3 SOLVEDEXAMPLES(2Marks) Q1.Write chemicalequations forthe followingreactions: (i) Reactionof ethanolicnh 3 withc 2 H 5 Cl. (ii)ammonolysis of benzylchlorideandreactionof aminesoformed withtwo molesofch 3 Cl Ans:

Q2.Write chemicalequations forthe followingconversions: (i)ch3 CH2 ClintoCH3 CH2 CH2 NH2 (ii)c6h5 CH5 ClintoC6H5 CH2 CH2 NH2 Q3.Writestructures andiupac names of (i)theamidewhichgives propanamine byhoffmannbromamidereaction. (ii)theamineproducedbythehoffmanndegradationofbenzamide. ANS.(i)Propanaminecontainsthreecarbons.Hence,theamidemoleculemustcontain fourcarbonatoms.structureandiupacnameofthestartingamidewithfourcarbon atoms aregivenbelow: (Butanamide) (ii)benzamideisanaromaticamidecontainingsevencarbonatoms.hence,theamineformed frombenzamideis aromatic primary amine containing sixcarbonatoms. (Anilineorbenzenamine) Q4.Writethereactionsof(i)aromatic and(ii)aliphatic primary amines withnitrous acid. ANS.(i)Aromaticaminesreactwithnitrousacid(preparedinsitufromNaNO2 anda mineralacidsuchashcl)at273 278Ktoformstablearomaticdiazoniumsaltsi.e., NaCland H2O.

(ii)aliphaticprimaryaminesreactwithnitrousacid(preparedinsitufromnano2 amineralacidsuchashcl)toformunstablealiphaticdiazoniumsalts,whichfurther producealcoholandhclwiththeevolutionof N2 gas. and Q 5.Convert (i)ethanoic acidintomethanamine (ii)hexanenitrileinto1-aminopentane ANS.(i) (ii) Q6.How willyouconvert: (i)methanol toethanoic acid (ii)ethanamineintomethanamine

Q8.How willyouconvert (i)ethanoic acidintopropanoic acid (ii)methanamine intoethanamine Q9.How willyouconvert (i)nitromethane intodimethylamine (ii)propanoic acidintoethanoic acid? Q10. An aromatic compound A on treatment with aqueous ammonia and heating forms compound B whichonheatingwithbr2 andkohformsacompound C ofmolecularformula C6H7N.Writethestructures andiupacnamesofcompounds A, BandC. ANS.Itisgiventhatcompound C havingthemolecularformula,c6h7nisformedby heatingcompound B withbr2 andkoh.thisisahoffmannbromamidedegradation reaction.therefore,compound B isanamideandcompound C isanamine.theonly aminehavingthemolecularformula,c6h7n isaniline,(c6h5nh2).thegivenreactions canbeexplainedwiththehelpof thefollowingequations: Q1. Arrangethe following: (i) Indecreasingorder ofthepkbvalues: C2H5 NH2,C6H5NHCH3,(C2H5)2 NHandC6H5NH2 (ii)inincreasingorderofbasic strength: C6H5NH2,C6H5N (CH3)2,(C2H5)2 NHandCH3NH2 (iii)inincreasing orderof basic strength: Aniline, p-nitroanilineandp-toluidine ANS.(i) Theorderofincreasingbasicityof thegivencompoundsisas follows: C6H5NH2 <C6H5NHCH3<C2H5NH2 <(C2H5)2NH Weknowthatthehigherthebasicstrength, the loweristhepkb values. C6H5NH2>C6H5NHCH3>C2H5NH2 >(C2H5)2NH (ii)theincreasingorderof thebasicstrengthsofthegivencompoundsisasfollows:

C6H5NH2 <C6H5N (CH3)2<CH3NH2<(C2H5)2NH (iii) Theincreasingorder of thebasicstrengthsofthegivencompoundsis: p-nitro aniline<aniline<p-toluidine Q2. Arrangethefollowing (i) Indecreasingorder ofbasicstrengthingasphase: C2H5NH2,(C2H5)2NH,(C2H5)3NandNH3 (ii)inincreasingorderofboilingpoint: C2H5OH,(CH3)2NH,C2H5NH2 (iii) Inincreasingorder ofsolubilityinwater: C6H5NH2,(C2H5)2NH,C2H5NH2. ANS.(i)Thegivencompoundscanbearrangedinthedecreasingorderoftheirbasic strengthsinthegasphaseas follows: (C2H5)3N> (C2H5)2NH>C2H5NH2 >NH3 (ii)thegivencompoundscanbearrangedintheincreasingorderoftheirboilingpoints as follows: (CH3)2NH<C2H5NH2 <C2H5OH (iii)themoreextensivetheh bonding,thehigheristhesolubility.c2h5nh2 containstwohatoms whereas (C2H5)2NHcontainsonlyoneH-atom.Thus,C2H5NH2 undergoes moreextensiveh bondingthan(c2h5)2nh.hence,thesolubilityinwaterofc2h5nh2ismoreth anthat of(c2h5)2nh. Q3.Accomplishthefollowingconversions: (i) Nitrobenzenetobenzoiac id(ii) Benzeneto m- bromophenol(iii) (ii) Benzoicacid toaniline 5MARKS QUESTIONS Q1.GivethestructuresofA, B andc inthefollowingreactions: (i) (ii) (iii) (iv) (v)

Level1 1. WriteIUPACName ofc6h5n(ch3)3br? 2. Whichreactionisused forpreparationofpurealiphatic&aralkylprimaryamine? 3. Name onereagentused fortheseparationofprimary,secondary&tertiaryamine? 4. What aminesalts areusedfordetermingtheirmolecularmasses? 5. Whatisthedirective influence ofaminogroupinarylamines? 6. Whyarebenzene diazoniumsaltssoluble inwater? 7. Whichismorebasic:CH3NH2 & (CH3)3N? 8. Whichismoreacidic,aniline orammonia? 9. WritetheIUPACname ofc6h5nhch3? 10.Mentiontwousesofsulphanilicacid? Level2 1. Whatforarequaternaryammoniumsaltswidelyused? 2. Whatproductisformedwhenaniline isfirstdiazotizedandthentreatedwith Phenolinalkaline medium? 3. Howisphenylhydrazineprepared fromaniline? 4. WhatistheIUPACname ofatertiaryaminecontainingone methyl,one ethyl Andone n-propylgroup? 5. Explainwhysilverchloride issoluble inaqueoussolutionofmethylamine? 6. WritetheIUPACname ofc6h5n(ch3)3br? 7. Primaryamineshavehigherboilingpointsthentertiaryamineswhy? 8. Whyisitnecessarytomaintainthetemperaturebetween273K&278Kduring diazotization? 9. Arrangethefollowinginorderofdecreasingbasic strength: Ethylamine,Ammonia,Triethylamine? 10.Whyaniline is acetylatedfirsttoprepare monobromoderivative? LEVEL 3 1. Arrangethefollowingindecreasingorderoftheirbasicstrength. C6H5NH2,C2H5NH2, (C2H5)2NH,NH3 (Gas phase and aq. Phase both) 2. Writechemicalequationfortheconversion CH3-CH2-ClintoCH3 CH2-CH3-NH2 3.Writethe equationinvolvedincarbylamines reactions? 4. Howwillyoudistinguishthefollowingpairs? (i)methanamineandn-methylmethaneamine (ii)anilineandethylamine 1 MARK QUESTIONS Q1. Arrange the following in decreasing order of their basic strength: C 6H 5NH 2, C 2H 5NH 2, (C 2H 5) 2NH, NH 3 Q2. Arrange the following in decreasing order of the pkbvalues: C 2H 5NH 2, C 6H 5NHCH 3, (C 2H 5) 2NH and C 6H 5NH 2 Q3. pkbof aniline is more than that of methylamine. Why? Q4. Ethylamine is soluble in water whereas aniline is not. Give reason. Q5. Methylamine in water reacts with ferric chloride to precipitate hydrated ferric oxide. Why?

Q6. Although amino group is o and p directing in aromatic electrophilic substitution reactions, aniline on nitration gives a substantial amount of m-nitroaniline. Give reason. Q7. Aniline does not undergo Friedel-Crafts reaction. Why? Q8. Diazonium salts of aromatic amines are more stable than those of aliphatic amines. Why? Q9. Gabriel phthalimide synthesis is preferred for synthesising primary amines. Give reason Q10. Why cannot aromatic primary amines be prepared by Gabriel phthalimide synthesis? Q11. Why do primary amines have higher boiling point than tertiary amines? Q12. Why are aliphatic amines stronger bases than aromatic amines? Q13. Direct nitration of aniline is not carried out. Give reason. Q14. The presence of base is needed in the ammonolysis of alkyl halides. Why? 2 MARKS QUESTIONS Q1. Write structures and IUPAC names of (i) the amide which gives propanamine by Hoffmann bromamide reaction. (ii) the amine produced by the Hoffmann degradation of benzamide. Q2. Give one chemical test to distinguish between the following pairs of compounds. (i) Methylamine and dimethylamine (ii) Ethylamine and aniline (Isocyanides test) (Diazo test) Q3. Write short notes on the following: (i) Carbylaminereaction (ii) Diazotisation Q4. Explain the following with the help of an example.(please Refer Textbook) (i) Hofmann s bromamidereaction (ii) Coupling reaction Q5. Explain the following with the help of an example.(please Refer Textbook) (i) Ammonolysis (ii) Gabriel phthalimide synthesis Q6. How can you convert an amide into an amine having one carbon less than the starting compound? Name the reaction. Q7. Give a chemical test to distinguish between:(practise) (a) C 6H 5NH 2& CH 3NH 2 (b) CH 3NHCH 3& (CH 3) 3N Q8. Give the IUPAC names of: (a) (CH 3) 2CHNH 2 (b) (CH 3CH 2) 2NCH 3 Q9. Write the structures of: (a) 3-Bromobenzenamine (b) 3-Chlorobutanamide 3 MARKS QUESTIONS(Practice Yourself)(Please Refer Textbook) Q1. How will you convert (i) Benzene into aniline (ii) Benzene into N, N-dimethylaniline (iii) Aniline to Sulphanilic acid Q2. An aromatic compound A on treatment with aqueous ammonia and heatingforms compound B which on heating with Br 2 and KOH forms a compound C of molecular formula C 6H 7N. Write the structures and IUPAC names of compounds A, B and C. Q3. How will you carry out the following conversions (Write Chemical equations and reaction conditions):

(a) Aniline to Phenol (b)acetamide to Ethylamine (c) Aniline to p-nitroaniline

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