Q.The pressure that each individual gas would exert if it were alone in the container, what do we call it as ?
Concept understanding — Dalton's Law of Partial Pressures
Dalton's Law of Partial Pressures
Imagine you're in a room full of people talking. Each person contributes to the overall noise. If you could somehow measure the sound from just one person, that's their "partial noise." The total noise is just the sum of everyone's individual contributions. Gases behave the same way.
When you have a mixture of gases — say oxygen, nitrogen, and carbon dioxide — each gas behaves as if it were alone in the container. It doesn't care about the other gases. It bounces around, hits the walls, and exerts its own pressure. That pressure is called its partial pressure.
The key assumption: the gases must not react with each other. If they react, the rule breaks down.
The Precise Statement
Dalton's Law of Partial Pressures says:
The total pressure exerted by a mixture of non-reacting gases is equal to the sum of the partial pressures of each individual gas.
Mathematically:
Ptotal=P1+P2+P3+…
where P1, P2, P3, etc. are the partial pressures of each gas.
What Exactly Is a Partial Pressure?
The partial pressure of a gas in a mixture is the pressure that gas would exert if it alone occupied the entire container at the same temperature.
Think of it this way: if you have a 1-litre flask containing oxygen and nitrogen at room temperature, the oxygen molecules don't know the nitrogen molecules exist. They just keep hitting the walls. The pressure from oxygen alone is its partial pressure. The pressure from nitrogen alone is its partial pressure. Add them up, and you get the total pressure.
Pi=ntotalni×Ptotal
Here ni is the number of moles of gas i, and ntotal is the total number of moles. This formula lets you find a gas's partial pressure if you know its mole fraction and the total pressure.
Why Does This Work?
Gases are mostly empty space. The molecules are far apart and move independently. In an ideal gas, there are no attractive or repulsive forces between molecules. So each gas in a mixture behaves exactly as it would alone. The pressure each gas exerts depends only on its own number of molecules, not on what other gases are present.
Dalton's Law works perfectly for ideal gases. Real gases at very high pressures or low temperatures may show small deviations because molecules do interact slightly. But for most exam problems, you treat them as ideal.
A Simple Example
Suppose you have a container with 2 moles of oxygen and 3 moles of nitrogen at a total pressure of 5 atm. The mole fraction of oxygen is 2/5=0.4, and of nitrogen is 3/5=0.6.
Partial pressure of oxygen: 0.4×5=2 atm
Partial pressure of nitrogen: 0.6×5=3 atm
Total: 2+3=5 atm — checks out.
Why It Matters
Dalton's Law is everywhere in chemistry and biology. When you breathe, the partial pressure of oxygen in your lungs determines how much oxygen enters your blood. In scuba diving, the partial pressure of nitrogen affects decompression sickness. In industrial processes, knowing partial pressures helps control reaction rates.
The core idea: in a mixture of non-reacting gases, each gas is independent. Its contribution to total pressure is its partial pressure, and the total is just the sum.
Dalton's law of partial pressures is a standard NCERT/CBSE Class 11 Chemistry topic under states of matter, and "Dalton's law of partial pressures formula and numericals" is a commonly searched revision query. It's also a recurring important-question topic in JEE Main and NEET, especially in gas-mixture and mole-fraction problems.
The pressure a gas would exert alone in the container is its partial pressure.
Partial pressure.
Step 1. In a mixture of non-reacting gases, each component gas still behaves as if the others were not there.
Step 2. The pressure that one particular gas in the mixture would exert if it alone occupied the whole container at the same temperature is, by definition, called its partial pressure.
Step 3. Dalton's law states that the sum of all the individual gases' partial pressures equals the total pressure of the mixture.
Partial pressure.
Recall the definition given directly under Dalton's law of partial pressures.
- Calling it 'total pressure' instead of 'partial pressure' -- total pressure is the SUM of all the partial pressures, not any one gas's own contribution.
- CBSE 2025Set ANNUAL1 markMCQQ.Steam distillation is based on(a) Boyle's law(b) Charles' law(c) Dalton's law of partial pressure(d) Avogadro's law
›Reveal solutionSolution
Steam distillation works because of Dalton's law of partial pressures.
When two immiscible liquids (e.g. water and an organic compound insoluble in water) are heated together, each exerts its own vapour pressure independently, and by Dalton's law the total vapour pressure is the sum of the two partial pressures: P(total) = P(water) + P(organic). The mixture boils (and distils over) once this total pressure equals atmospheric pressure — which happens at a temperature below the normal boiling point of either pure liquid. This allows high-boiling, water-insoluble organic compounds to be distilled at a much lower temperature, without decomposition.
✓Final answer(C) Dalton's law of partial pressure.
- CBSE 2024Set ANNUAL1 markMCQQ.Which of the following gases does not obey Dalton's law of partial pressure?(a) O2 and CO2(b) N2 and O2(c) Cl2 and SO2(d) CO2 and He
›Reveal solutionSolution
Dalton's law holds only for non-reacting gases; Cl2 and SO2 can react with each other, so that pair does not obey it.
Dalton's law of partial pressures states that the total pressure of a mixture of non-reacting gases equals the sum of their individual partial pressures. It is derived assuming the gases do not interact chemically. O2/CO2, N2/O2, and CO2/He are all chemically inert towards each other under ordinary conditions and obey the law. Cl2 and SO2, however, can combine to form sulphuryl chloride (SO2Cl2), so a mixture of these two gases is not simply additive in the way Dalton's law assumes.
✓Final answer(C) Cl2 and SO2.
- CBSE 2019Set ANNUAL1 markQ.Define Dalton's law of partial pressure.
›Reveal solutionSolution
Dalton's law says the total pressure of a gas mixture equals the sum of the partial pressures each gas would exert alone in the same container.
The partial pressure of a gas in a mixture is the pressure that gas would exert if it alone occupied the same volume at the same temperature. Dalton's Law of Partial Pressures states that, for a mixture of non-reacting gases at constant temperature and volume, the total pressure of the mixture is the sum of the partial pressures of all the component gases:
P(total) = p1 + p2 + p3 + ...
This follows from the ideal gas equation: since each gas independently obeys PV = nRT in the shared volume V and temperature T, each gas's partial pressure is p_i = n_i RT / V, and adding these for all gases present gives the same result as treating the mixture as one gas with n(total) = sum of n_i. A common application is finding the pressure of a 'dry' gas collected over water: P(dry gas) = P(total, measured) - P(water vapour, i.e. aqueous tension).
✓Final answerDalton's Law of Partial Pressures: at constant temperature and volume, the total pressure exerted by a mixture of two or more non-reacting (chemically inert towards each other) gases is equal to the sum of the partial pressures of each individual gas, i.e. P(total) = p1 + p2 + p3 + ...
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