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Exercises · 1.12

Q.State Henry's law and mention some important applications.

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Henry's law states that at constant temperature, the solubility of a gas in a liquid is directly proportional to the partial pressure of the gas above the liquid. Its key applications include carbonated beverages, deep-sea diving, and the respiration of oxygen in blood.

Understanding Henry's Law

Henry's law is a fundamental principle in physical chemistry that describes how gases dissolve in liquids. The intuition is simple: when you increase the pressure of a gas above a liquid, more gas molecules are forced into the liquid phase. Think of it like squeezing more people into a room — the harder you push (higher pressure), the more people (gas molecules) can fit.

p=kH⋅xp = k_H \cdot x

where pp is the partial pressure of the gas above the liquid, xx is the mole fraction of the gas in the liquid, and kHk_H is Henry's law constant (which depends on the gas-liquid pair and temperature).

The constant kHk_H is unique for each gas-liquid system. A higher kHk_H means the gas is less soluble (you need more pressure to dissolve the same amount), while a lower kHk_H means the gas dissolves more readily.

Watch out

Henry's law applies only to dilute solutions and when the gas does not chemically react with the solvent. For example, ammonia (NH3NH_3) reacts with water, so Henry's law does not hold for it — you need to account for the chemical equilibrium as well.

Step-by-Step Derivation and Explanation

  1. The basic relationship At a fixed temperature, the amount of gas dissolved in a liquid is directly proportional to the pressure of that gas above the liquid. Mathematically:

C=kH⋅pC = k_H \cdot p

where CC is the concentration of the dissolved gas (often in mol/L or mole fraction), pp is the partial pressure, and kHk_H is Henry's constant. This is the most common form used in problems.

  1. Why temperature matters

    Henry's constant kHk_H is temperature-dependent. As temperature increases, gas solubility generally decreases (think of a warm soda going flat faster). This is because dissolution of a gas is usually exothermic — heat drives the gas out of solution.

  2. The mole fraction form

    For precise work, especially in mixtures, we use mole fraction:

p=kH⋅xp = k_H \cdot x

Here xx is the mole fraction of the gas in the liquid. This form is useful when dealing with multiple gases or when the solvent itself is volatile.

Important Applications

Henry's law explains several everyday phenomena and has critical industrial and biological applications:

  1. Carbonated beverages

    Soda and beer are bottled under high CO2CO_2 pressure. When you open the bottle, pressure drops suddenly, and CO2CO_2 comes out of solution — that's the fizz. The law predicts exactly how much gas remains dissolved at any given pressure.

  2. Deep-sea diving

    Divers breathe compressed air at depth. Under high pressure, nitrogen dissolves in the blood. If the diver ascends too quickly, the sudden pressure drop causes nitrogen to form bubbles in the bloodstream — this is decompression sickness ("the bends"). Henry's law governs this process, and divers must ascend slowly to allow nitrogen to leave the blood gradually. …

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