Which of the following statements about volatile liquids is correct? They have
Answer Details
Volatile liquids are substances that have a tendency to evaporate easily at room temperature. This is because the molecules of volatile liquids have weak intermolecular forces, which allow them to escape easily from the surface of the liquid and form a gas.
The vapour pressure of a liquid is a measure of the tendency of its molecules to escape into the gas phase. Volatile liquids have a high vapour pressure because a large number of their molecules can escape from the surface of the liquid and enter the gas phase, even at relatively low temperatures.
The boiling point of a liquid is the temperature at which its vapour pressure becomes equal to the external pressure on the liquid. At this temperature, the molecules of the liquid have enough energy to overcome the intermolecular forces holding them together and escape into the gas phase.
Therefore, the correct statement about volatile liquids is that they have a high vapour pressure and a low boiling point. This is because they can easily form a gas at room temperature due to their weak intermolecular forces, and their vapour pressure is high because a large number of their molecules can escape from the surface of the liquid. In addition, their low boiling point indicates that they can boil at a relatively low temperature, as their vapour pressure is already high at lower temperatures.
The other options are not correct because they describe properties that are not characteristic of volatile liquids. Volatile liquids do not have a low vapour pressure or a high boiling point, as they can easily form a gas at low temperatures and boil at relatively low temperatures.