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Q.Arrange the following in decreasing order of basic character: C6H5NH2C_6H_5NH_2, (CH3)3N(CH_3)_3N, C2H5NH2C_2H_5NH_2

CBSECBSE Class XII Board 2019Subjective· 1mImportance★★★★★
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The basicity of amines depends on the availability of the lone pair on nitrogen. Aromatic amines are least basic due to resonance, while aliphatic amines' basicity is a balance of inductive effect, solvation, and steric hindrance. The decreasing order of basic character is C2H5NH2>(CH3)3N>C6H5NH2\boxed{C_2H_5NH_2 > (CH_3)_3N > C_6H_5NH_2}.

The basic character of an amine is determined by the ease with which its nitrogen atom can donate its lone pair of electrons to a proton (H+H^+) or another electron-deficient species. Essentially, a stronger base is one where the lone pair on nitrogen is more available. Several factors influence this availability:

  1. Inductive Effect (+I Effect): Alkyl groups (RR) are electron-donating groups. They push electron density towards the nitrogen atom, increasing the electron density on nitrogen and making its lone pair more available for donation. More alkyl groups generally mean a stronger inductive effect.
  2. Resonance Effect: If the lone pair on nitrogen is involved in resonance with an adjacent π\pi-system (like a benzene ring), it becomes delocalized and less available for donation, significantly decreasing basicity.
  3. Solvation Effect (in aqueous solution): When an amine accepts a proton, it forms a conjugate acid (RNH3+RNH_3^+, R2NH2+R_2NH_2^+, R3NH+R_3NH^+). This conjugate acid is stabilized by hydrogen bonding with water molecules. The more hydrogen bonds it can form, the more stable the conjugate acid, and thus the stronger the original amine base.
    • Primary amines (RNH2RNH_2) form RNH3+RNH_3^+ which can form 3 H-bonds.
    • Secondary amines (R2NHR_2NH) form R2NH2+R_2NH_2^+ which can form 2 H-bonds.
    • Tertiary amines (R3NR_3N) form R3NH+R_3NH^+ which can form 1 H-bond. Therefore, based on solvation alone, the order of basicity would be 1∘>2∘>3∘1^\circ > 2^\circ > 3^\circ.
  4. Steric Hindrance: Bulky alkyl groups around the nitrogen atom can physically hinder the approach of a proton, making protonation more difficult and reducing basicity, especially in tertiary amines.

The observed basicity order in aqueous solution is a result of the complex interplay of these three factors.

Let's analyze the given amines: C6H5NH2C_6H_5NH_2, (CH3)3N(CH_3)_3N, C2H5NH2C_2H_5NH_2.

  1. Analyze C6H5NH2C_6H_5NH_2 (Aniline):

    • Aniline is an aromatic primary amine. The lone pair of electrons on the nitrogen atom is delocalized into the benzene ring through resonance.
    • This delocalization makes the lone pair significantly less available for protonation.
    • Consequently, aniline is a much weaker base compared to aliphatic amines.

    The lone pair on nitrogen participates in resonance with the benzene ring, making it less available.

  2. Analyze C2H5NH2C_2H_5NH_2 (Ethylamine):

    • Ethylamine is a primary aliphatic amine. It has one ethyl group (C2H5C_2H_5) attached to the nitrogen.
    • The ethyl group exerts a +I effect, pushing electron density towards the nitrogen, making the lone pair more available.
    • Its conjugate acid, C2H5NH3+C_2H_5NH_3^+, can form three hydrogen bonds with water molecules, leading to significant stabilization through solvation.
    • Steric hindrance is minimal.
  3. Analyze (CH3)3N(CH_3)_3N (Trimethylamine):

    • Trimethylamine is a tertiary aliphatic amine. It has three methyl groups (CH3CH_3) attached to the nitrogen.
    • The three methyl groups exert a strong cumulative +I effect, significantly increasing the electron density on the nitrogen.
    • However, its conjugate acid, (CH3)3NH+(CH_3)_3NH^+, can form only one hydrogen bond with water molecules, resulting in poor stabilization through solvation.
    • The three bulky methyl groups also cause significant steric hindrance, making it difficult for a proton to approach the nitrogen atom.
  4. Comparing C2H5NH2C_2H_5NH_2 and (CH3)3N(CH_3)_3N in aqueous solution:

    • While (CH3)3N(CH_3)_3N has a stronger inductive effect due to three alkyl groups compared to one in C2H5NH2C_2H_5NH_2, the reduced solvation of its conjugate acid and the increased steric hindrance outweigh this effect.
    • The greater stability of the C2H5NH3+C_2H_5NH_3^+ ion (due to better solvation) makes C2H5NH2C_2H_5NH_2 a stronger base than (CH3)3N(CH_3)_3N in aqueous solution.
    Important

    For aliphatic amines in aqueous solution, the observed basicity order is a balance of inductive effect, solvation, and steric hindrance. For methyl amines, the order is 2∘>1∘>3∘2^\circ > 1^\circ > 3^\circ. For ethyl amines, the order is 2∘>3∘>1∘2^\circ > 3^\circ > 1^\circ. In this specific comparison, the primary ethylamine (C2H5NH2C_2H_5NH_2) is more basic than the tertiary methylamine ((CH3)3N(CH_3)_3N) due to superior solvation of its conjugate acid.

Combining these observations:

  • C6H5NH2C_6H_5NH_2 is the least basic due to resonance delocalization of the lone pair.
  • Between C2H5NH2C_2H_5NH_2 and (CH3)3N(CH_3)_3N, C2H5NH2C_2H_5NH_2 is more basic because the favorable solvation of its conjugate acid and minimal steric hindrance dominate over the stronger inductive effect but poorer solvation and greater steric hindrance of (CH3)3N(CH_3)_3N.

Therefore, the decreasing order of basic character is:

C2H5NH2>(CH3)3N>C6H5NH2C_2H_5NH_2 > (CH_3)_3N > C_6H_5NH_2

✓Final answer

The decreasing order of basic character is C2H5NH2>(CH3)3N>C6H5NH2\boxed{C_2H_5NH_2 > (CH_3)_3N > C_6H_5NH_2}.

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