Practical Organic Chemistry and PurificationhardNUMERICAL

Kjeldahl’s method was used for the estimation of nitrogen in an organic compound. The ammonia evolvePractical Organic Chemistry and Purification Chemistry Question

Question

Kjeldahl’s method was used for the estimation of nitrogen in an organic compound. The ammonia evolved from 0.55 g of the compound neutralised 12.5 mL of 1 M H SO solution. The percentage of nitrogen in the compound is_____. (Nearest integer) 2 4

Answer: 64.00

💡 Solution & Explanation

**Step 1: Determine moles of H₂SO₄ used** Moles of H₂SO₄ = Molarity × Volume (L) = 1 M × 0.0125 L = 0.0125 mol **Step 2: Find moles of NH₃ neutralized** The neutralization reaction is: 2NH₃ + H₂SO₄ → (NH₄)₂SO₄ From stoichiometry: 1 mol H₂SO₄ neutralizes 2 mol NH₃ Moles of NH₃ = 2 × 0.0125 = 0.025 mol **Step 3: Calculate moles of nitrogen** Since each NH₃ molecule contains 1 nitrogen atom: Moles of N = 0.025 mol **Step 4: Convert moles of N to mass** Atomic mass of N = 14 g/mol Mass of N = 0.025 mol × 14 g/mol = 0.35 g **Step 5: Calculate percentage of nitrogen** Percentage of N = (Mass of N / Mass of compound) × 100 = (0.35 / 0.55) × 100 = 63.64% ≈ 64% Therefore, the answer is 64.00.

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