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Exercises · 8.22

Q.Differentiate between the principle of estimation of nitrogen in an organic compound by

(i) Dumas method
(ii) Kjeldahl's method.
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Dumas oxidises the entire compound to release nitrogen as gas; Kjeldahl converts nitrogen to ammonium salt via acid digestion. Dumas is universal but cumbersome; Kjeldahl is faster but fails for nitro/azo groups.


Both methods aim to quantify nitrogen in organic compounds, but they attack the problem from opposite chemical directions. Understanding why each works—and where each fails—is the heart of analytical chemistry.

The Core Philosophy

Nitrogen sits stubbornly inside organic molecules. To measure it, we must either:

  1. Liberate it as a gas and measure volume (Dumas), or
  2. Trap it as a salt and titrate (Kjeldahl).

The choice hinges on the nitrogen's chemical environment in the molecule.


(i) Dumas Method

This is the brute-force approach: burn everything.

Principle:

The organic compound is heated with copper(II) oxide in a CO2\text{CO}_2 atmosphere. The carbon and hydrogen oxidise to CO2\text{CO}_2 and H2O\text{H}_2\text{O}; nitrogen—regardless of its original form—is liberated as N2\text{N}_2 gas. Any nitrogen oxides (NOx\text{NO}_x) formed are reduced back to N2\text{N}_2 by passing over hot copper.

Organic compound+CuO→ΔCO2+H2O+N2+Cu\text{Organic compound} + \text{CuO} \xrightarrow{\Delta} \text{CO}_2 + \text{H}_2\text{O} + \text{N}_2 + \text{Cu}

The nitrogen gas is collected over potassium hydroxide solution (which absorbs CO2\text{CO}_2), and its volume is measured. From the volume, we calculate moles, then mass, then percentage.

Why it works universally:

Complete combustion doesn't care about functional groups. Nitro (−NO2-\text{NO}_2), azo (−N=N−-\text{N}=\text{N}-), nitrile (−C≡N-\text{C}\equiv\text{N})—all end up as N2\text{N}_2. The method is non-selective.

Tip

Dumas is the referee method when Kjeldahl fails. If you see a nitro compound in an exam question, think Dumas.

Drawbacks:

  • Requires specialized glassware (Dumas tube, nitrometer).
  • Time-consuming and needs careful gas volume corrections (temperature, pressure).
  • Not practical for routine analysis.

(ii) Kjeldahl's Method

This is the chemist's workhorse: digest, distill, titrate.

Principle:

The organic compound is heated with concentrated H2SO4\text{H}_2\text{SO}_4 in the presence of a catalyst (often K2SO4\text{K}_2\text{SO}_4 to raise boiling point, plus CuSO4\text{CuSO}_4 or Se\text{Se} as catalyst). Nitrogen in amino groups (−NH2-\text{NH}_2), amides (−CONH2-\text{CONH}_2), and similar forms is converted to ammonium sulphate:

Organic-N+H2SO4→Δ,catalyst(NH4)2SO4\text{Organic-N} + \text{H}_2\text{SO}_4 \xrightarrow{\Delta, \text{catalyst}} (\text{NH}_4)_2\text{SO}_4

The digest is then made alkaline with excess NaOH\text{NaOH}, liberating ammonia:

(NH4)2SO4+2 NaOH→2 NH3+Na2SO4+2 H2O(\text{NH}_4)_2\text{SO}_4 + 2\,\text{NaOH} \to 2\,\text{NH}_3 + \text{Na}_2\text{SO}_4 + 2\,\text{H}_2\text{O}

The ammonia is distilled into a known volume of standard acid (e.g., HCl\text{HCl} or H2SO4\text{H}_2\text{SO}_4), and the unreacted acid is back-titrated with standard NaOH\text{NaOH}. From the amount of acid neutralised by NH3\text{NH}_3, we calculate nitrogen content.

Why it's faster:

No gas collection apparatus. The titration is straightforward and reproducible. Ideal for proteins, fertilizers, and food analysis.

Watch out

Kjeldahl fails for nitrogen in nitro (−NO2-\text{NO}_2), nitroso (−NO-\text{NO}), azo (−N=N−-\text{N}=\text{N}-), and nitrile (−C≡N-\text{C}\equiv\text{N}) groups. These forms do not convert to (NH4)2SO4(\text{NH}_4)_2\text{SO}_4 under acid digestion. The method only works for nitrogen directly bonded to carbon or hydrogen in a reducible form.


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