Ideal Solution: Definition, Characteristics and Importance

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Jasmine Grover

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Ideal solution can be referred to as a homogeneous mixture where the molecular interaction between solution and solvent is identical to the molecular interaction of each component itself. 

Keyterms: Solutions, homogeneous mixture, molecular interaction, solvent, component, boiling point, vapour pressure, freezing point, colligative properties


Ideal Solution Definition

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When two homogeneous mixtures of two or more than two components are combined, they form what is called a solution. The solvent, which is the highest quantity of a component, works towards determining the physical state of the solution. Two components mixed to form a solution is called a binary solution and the properties that this solution has are expressed in terms of its boiling point, vapour pressure, freezing point along with other colligative properties.The binary liquid in liquid solutions can be classified into two types ideal and non-ideal solutions

Ideal Solution Graph

Ideal Solution Graph

An ideal solution can be referred to as a mixture where the molecules belonging to various species are differentiable. The molecules present in an ideal solution apply forces on one another. When those forces are similar in case of all the molecules irrespective of their species, the solution is known as an ideal solution. 

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Characteristics of an Ideal Solution

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At most times, an ideal solution has the kind of physical properties that are very closely related to those of the pure components. Some of them are as follows: 

  1. The enthalpy of a solution is zero. In case the enthalpy of the solution is closer to zero then it is more likely to show an ideal behaviour. ΔmixH=0
  2. The volume of mixing is also zero. ΔmixV=0

In order to obtain an ideal solution, mixing a solvent and a solute that consists of a similar molecular size and structure can help. One can even take two substances X and Y, and then mix them. It can be seen that there are several intermolecular forces that exist between them.

Although getting a well balanced and stable ideal solution is a rare situation, sometimes some solutions tend to exhibit ideal behaviour. 

For example, 

  • X and X experience intermolecular forces of attraction.
  • Y and Y experience intermolecular forces of attraction.
  • X and Y experience intramolecular forces of attraction.

Here, when the intermolecular forces of attraction are the same or equal, it gives us an ideal solution. It is extremely significant to understand the concept of an ideal solution, more so in situations where colligative properties and chemical thermodynamics are concerned. 


Comparison between Ideal Solution and an Non-Ideal Solution

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Ideal Solution Non Ideal Solution
There is no enthalpy change on mixing There is no enthalpy change on mixing.
At all temperatures and concentrations every component obeys Raoult's law. Their components don't always obey Raoult's law. They show positive and negative deviations from Raoult's law 
There is no volume change on mixing There is no volume change on mixing
In the case of pure components there are similar interactions between the components. The non-ideal solution differs in case of the interaction between the components from those of the pure components

The Physical Origin of Ideal Solution 

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The ideality for gasses are very similar to that of the solutions. One of the most important differences however is that the intermolecular interactions in these liquids are quite strong and they cannot simply be neglected, the way they can for ideal gasses. However, it is not wrong to assume that the mean strength of these interactions are the same between each and every molecule of this particular solution.


Raoult's law 

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Raoult’s law is followed in an ideal solution at majorly all the levels of temperatures and concentrations. The simplest definition of an ideal solution can be stated by calling it a homogeneous solution that is a place for the interaction between solute and solvent, the molecules of components.

It is a mixture in which the molecules of several different species are quite distinguishable, however, unlike the ideal gas, the molecules in this ideal solution exerts forces on one another. When those forces are the same for all molecules that are independent of species, then only is a solution referred to as ideal. 


Importance of Raoult's Law

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In a hypothetical scenario, if one has a locked container that is loaded with volatile liquid A. For some time, owing to evaporation, few vapour particles might begin to form. As time passes, the A vapor particles will be in dynamic equilibrium with the liquid particles that are on the surface. The pressure exerted by the vapor particles of A at some given temperature is known as the vapor pressure of A at the same temperature.

When two homogeneous mixtures of two or more than two components are combined, they form what is called a solution. The solvent, which is the highest quantity of a component, works towards determining the physical state of the solution. Two components mix to form a solution that is called a binary solution and the properties that this solution has are expressed in terms of its boiling point, vapour pressure, freezing point along with other colligative properties. 


Things to Remember

  1. Ideal Solutions is a part Class 12 chemistry first term syllabus.
  2. It comes under Unit 2 Solution and carries a total of 8 periods and 4 to 5 marks.
  3. Raoult's law states that when a non-volatile electrolyte is dissolved in a solvent the relative lowering of the vapour pressure is equal to the mole fraction of the solute”.
  4.  When in a solution the interaction of different components of molecules does not differ from the interactions of the component’s of each molecule, it is called the ideal solution. It consists of the concentrations and temperatures that obey Raoult’s law.
  5.  Two of the characteristics of an ideal solution are:
  1. The mixing volume change should be zero.
  2. The mixing heat change should be zero

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Previous Year Questions (PYQs)


Sample Questions

Ques. What do you understand by Raoult’s Law formula? (1 mark)

Ans. Raoult’s law is a chemical law that refers to a solution’s vapour pressure based on the mole fraction of a solution that is applied. Raoult’s Law is expressed by the formula, Resolution = Χsolvent*Psolvent.

Ques. What all contributes to making an Ideal Gas? (1 mark)

Ans. An ideal gas can be defined as one where the collisions between atoms or molecules are perfectly elastic and the one where there are no attractive intermolecular forces. It can be imagined as a series of colliding perfectly hard spheres, but not communicating with each other.

Ques. What is stated in Raoult’s law? (1 mark)

Ans. Raoult’s law clearly states that the solution’s vapour pressure is the same as the sum of each volatile component’s vapour pressure in case it is strictly multiplied by the mole fraction of that component in the solution

Ques. What is an ideal solution? (1 mark)

Ans. Ideal solution can be referred to as a homogeneous mixture where the molecular interaction between solution and solvent is identical to the molecular interaction of each component itself. 

Ques. State the characteristics of an ideal solution. (1 mark)

Ans. The characteristics of an ideal solution are:

  1. The mixing volume change should be zero.
  2. The mixing heat change should be zero

Ques. Name certain examples of an ideal solution. (2 marks)

Ans. Examples of an ideal solution are:

  • Benzene and toluene
  • Ethyl bromide and ethyl iodide
  • N-heptane and n-hexane
  • Chlorobenzene and bromobenzene

Ques. State the difference between ideal and non-ideal solution. (4 marks)

Ans. The differences are:

Ideal Solution Non Ideal Solution
There is no enthalpy change on mixing There is no enthalpy change on mixing.
At all temperatures and concentrations every component obeys Raoult's law. Their components don't always obey Raoult's law. They show positive and negative deviations from Raoult's law 
There is no volume change on mixing There is no volume change on mixing
In the case of pure components there are similar interactions between the components. The non-ideal solution differs in case of the interaction between the components from those of the pure components

Ques. Which of the following statements regarding Ideal solutions is false and explain why? (3 marks)
(a) Ideal solutions obey Raoult’s law under all conditions of temperature and concentrations
(b) There will be some change in volume on mixing the components, i.e., ΔVmixing≠0
(c) There will be no change in enthalpy when the two components are mixed, i.e., ΔHmixing=0
(d) There will be no change in volume on mixing the components, i.e., ΔVmixing=0

Ans. b

An ideal solution at all temperatures and concentrations every component obeys Raoult's law and satisfies the following:

  • There will be some change in volume on mixing the components, i.e., ΔVmixing≠0
  • There is no enthalpy change on mixing two components ΔVmixing = 0.

Ques. Which of the following is not an example of an Ideal solution and explain why? (2 marks)
(a) Benzene + Toluene
(b) n-Hexane + n-Heptane
(c) Ethyl alcohol + Water
(d) Ethyl bromide + Ethyl chloride

Ans. c. Ethyl alcohol + Water

An ideal solution may be explained as a solution which undergro neither volume nor enthalpy change on mixing the solution and solvent in any quantity. 

Ques. A solution which does not obey Raoult’s law is called a non-ideal solution. (1 mark)
(a) True
(b) False

Ans. a, True.

Ques. Which of the following is false regarding Non-Ideal solutions?
(a) They do not obey Raoult’s law (1 mark)
(b) ΔVmixing ≠ 0
(c) ΔHmixing = 0
(d) They form azeotropes

Ans. c, ΔHmixing = 0

Ques. Which of the following is an example of a non-ideal solution showing positive deviation? (1 mark)
(a) Acetone + Carbon disulphide
(b) Chlorobenzene + Bromobenzene
(c) Chloroform + Benzene
(d) Acetone + Aniline

Ans. a, Acetone + Carbon disulphide.

Ques. Ideal solutions do not form azeotropes. (1 mark)
(a) True
(b) False

Ans. a, True.

Ques. Which of the following is not an example of a non-ideal solution showing negative deviation? (1 mark)
(a) HNO3 + Water
(b) HCl + Water
(c) Acetic acid + Pyridine
(d) Carbon tetrachloride + Toluene

Ans. d, Carbon tetrachloride + Toluene. 

Ques. Which of the following is true regarding non-ideal solutions with negative deviation? (1 mark)
(a) The interactions between the components are lesser than in the pure components
(b) ΔVmixing = +ve
(c) ΔHmixing = +ve
(d) They form maximum boiling azeotropes

Ans. d. 

Ques. State Raoult’s law for a solution containing volatile components. Write two characteristics of the solution which obeys Raoult’s law at all concentrations. (2019)

Ans. According to the Rault’s law any solution containing partial vapour pressure of every volatile component present in a solution is directly proportional to its mole fraction. The solution that follows the Rault’s law under every concentration levels are called to be ideal solution.

Two important properties are:

  • There is no enthalpy change on mixing.
  • There is no volume change on mixing.

Ques. Define the following term : Ideal solution. (AI 2013)

Ans. Ideal solution can be referred to as a homogeneous mixture where the molecular interaction between solution and solvent is identical to the molecular interaction of each component itself. 

Ques. What is meant by positive deviations from Raoult’s law? Give an example. What is the sign of ΔDmixH for positive deviation? (2015)

Ans. The negative deviation from the Rault’s law takes place when the solution has higher total vapour pressure than the corresponding vapour pressure in case of an ideal solution. 

Example: Mixture of ethanol and acetone

When the solution has a positive deviation, heat absorption takes place, therefore ΔDmixH shows a positive sign.


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