Q.Why is a solution of potassium hydroxide used to absorb the carbon dioxide evolved during the estimation of carbon present in an organic compound?
You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
Start your 14-day free trial to unlock the full solution →Carbon dioxide is acidic, so a strong base like KOH traps it quantitatively by forming potassium carbonate — this allows us to weigh the absorbed CO₂ and back-calculate the carbon percentage in the organic compound.
The question is about the estimation of carbon in an organic compound using the combustion method (often called Liebig’s method or a modern variant). You burn the compound completely in a stream of oxygen, converting all carbon into carbon dioxide. The key challenge: how do you measure how much CO₂ was produced? You can’t just collect it as a gas and weigh it easily — it’s dilute, mixed with other gases, and hard to handle. So you absorb it into a chemical that reacts with it completely and irreversibly, then weigh the absorption apparatus before and after. The increase in mass gives you the mass of CO₂ absorbed.
Why potassium hydroxide (KOH) specifically? Let’s walk through the reasoning.
-
CO₂ is an acidic oxide. Carbon dioxide dissolves in water to form carbonic acid (), a weak acid. To trap it efficiently, you want a strong base that will neutralise it completely. KOH is a strong, water-soluble base.
-
The reaction is clean and quantitative. When CO₂ gas is passed through a concentrated solution of KOH, it forms potassium carbonate:
This reaction goes essentially to completion. Every molecule of CO₂ that contacts the solution is trapped. No CO₂ escapes, so the mass gain of the KOH bulb (or U-tube) equals the mass of CO₂ produced.
-
KOH is more effective than other bases. You might wonder: why not use NaOH (sodium hydroxide) or Ca(OH)₂ (lime water)?
- NaOH works similarly, but KOH is preferred because its carbonate () is more soluble in water than sodium carbonate. This prevents clogging or precipitation inside the absorption tube, which would ruin the measurement.
- Ca(OH)₂ (lime water) also absorbs CO₂, but it forms insoluble calcium carbonate (), which quickly blocks the apparatus and stops further absorption. So it’s useless for a continuous, quantitative process.
-
The absorption must be complete and weighable. In the experiment, the combustion gases (CO₂, H₂O, N₂, excess O₂) are passed first through a drying agent (like anhydrous CaCl₂ or P₂O₅) to trap water, then through a KOH solution (often on pumice or in a U-tube) to trap CO₂. The KOH bulb is weighed before and after. The increase in mass is the mass of CO₂. From that, you calculate the mass of carbon: …
Unlock everything free for 14 days
- Full step-by-step solutions
- Concept-first explanations
- Methods, shortcuts & mistakes
- PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.