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Law of Chemical Equilibrium And Equilibrium Constant

ChemistryEquilibriumFor NEET aspirants

The law of chemical equilibrium states that for a reversible reaction at a given temperature, the ratio is a constant, called the equilibrium constant. This constant tells us the extent to which the reaction proceeds. A large means products dominate; a small means reactants dominate. The equilibrium constant depends only on temperature - it does not change with initial concentration, pressure, volume, or the presence of a catalyst.

Key Formulas - Quick Reference
  1. Equilibrium constant (concentration):
  2. Equilibrium constant (partial pressure):
  3. Relation between and : , where counts only gaseous species
  4. Reversed reaction:
  5. Reaction multiplied by : (where can be a fraction)
  6. Two reactions added:
  7. Degree of dissociation from vapour density: , where = initial VD, = VD at equilibrium, = moles of products per mole of reactant

1. What is Chemical Equilibrium?

Consider a reversible reaction carried out in a closed vessel:

At , only reactants are present. As and react, and start forming. The moment products appear, the reverse reaction also begins. Initially the forward rate is high (because and are high) and the reverse rate is zero. As time passes, the forward rate drops and the reverse rate rises. Eventually the two rates become equal - this is the state of chemical equilibrium.

Chemical equilibrium is the state of a reversible reaction in which the rate of the forward reaction equals the rate of the reverse reaction, so that the concentrations of reactants and products remain constant with time.
Rate versus time approach to chemical equilibrium Graph showing the forward reaction rate decreasing from a high initial value and the reverse reaction rate increasing from zero. Both curves meet at a horizontal plateau where forward rate equals reverse rate, marking the state of dynamic chemical equilibrium. Time → Rate teq rf = rb forward rate (rf) reverse rate (rb) Equilibrium
Figure 1: Approach to chemical equilibrium. The forward rate decreases while the reverse rate increases until they meet at , defining the equilibrium state.
Concentration versus time approach to equilibrium Graph showing reactant concentrations decreasing over time while product concentrations rise, both leveling off at constant values once equilibrium is reached. Time → Concentration Equilibrium reached [Reactants] [Products]
Figure 2: Concentrations of reactants fall and products rise until both level off at their equilibrium values, indicating no further net change.

2. Reversible vs Irreversible Reactions

FeatureReversible reactionIrreversible reaction
DirectionProceeds in both forward and reverse directionsProceeds only in the forward direction
NotationDouble arrow ()Single arrow ()
ExtentReaches equilibrium; never completes fullyReactants almost completely convert to products
ConditionClosed vesselOften in open vessel, or products escape
Example

A reaction that is reversible in a closed vessel may become effectively irreversible if carried out in an open one. For example, reaches equilibrium in a sealed container, but in an open lime kiln the escapes, driving the reaction to completion.

3. Types of Equilibria

Homogeneous equilibrium

All reactants and products are in the same phase. Examples:

  • - all gaseous
  • - all gaseous (Haber's process)
  • - all liquids

Heterogeneous equilibrium

Reactants and products exist in more than one phase. Examples:

  • - solid and gas
  • - solid and gas
  • - solid and gas
Important convention: In writing the equilibrium constant expression, the concentrations (or partial pressures) of pure solids and pure liquids are taken as unity. This is because their densities, and hence their "active masses" moles per litre density, remain effectively constant during the reaction. So for , we write and .

4. Characteristics of Chemical Equilibrium

  • Dynamic in nature: Both forward and reverse reactions continue at the molecular level; only the net change is zero.
  • Rate equality: Rate of forward reaction equals rate of reverse reaction.
  • Constant observable properties: Concentrations, pressure, colour, density, and refractive index remain constant with time.
  • Attainable from either side: The same equilibrium state is reached whether we start from pure reactants or pure products.
  • Catalyst effect: A catalyst speeds up the approach to equilibrium but does not shift the position of equilibrium.
  • Free energy change: At equilibrium, .
  • Requires a closed system: If any product escapes, equilibrium cannot be maintained.
Dynamic vs static equilibrium: A metal rod with a hot end and a cold end has a steady temperature profile - but heat flows only in one direction (hot to cold). This is a steady state, not a dynamic equilibrium. In chemical equilibrium, matter and energy flow equally in both directions.

5. Law of Mass Action

Proposed by Guldberg and Waage (1864): the rate of a chemical reaction at a given temperature is directly proportional to the product of the active masses (molar concentrations) of the reactants, each raised to the power of its stoichiometric coefficient.

For a general reaction :

where is the rate constant at that temperature.

Active mass is the molar concentration of a reacting species: . For pure solids and pure liquids, active mass is taken as unity.
Solved Example 1
Four 10 L vessels contain: (A) 16 g , (B) 18 g , (C) 35.5 g , (D) 44 g . Find the active mass (molar concentration) in each.
Solution:

Active mass .

(A)

(B)

(C)

(D)

6. Law of Chemical Equilibrium - Deriving

For the reversible reaction , applying the law of mass action to both directions:

Forward rate:

Reverse rate:

At equilibrium, , so:

Rearranging:

This ratio of rate constants is called the equilibrium constant in terms of concentrations, . It is a constant at a given temperature.

Solved Example 2
and are mixed at temperature such that the initial concentration of is twice that of . After equilibrium is reached in , the concentration of is three times the equilibrium concentration of . Calculate .
Solution:

Let , so . Let mol/L of (and of ) react:

Given :

7. Equilibrium Constant in Terms of Partial Pressures ()

For a gaseous reaction, the equilibrium constant can be written using partial pressures instead of concentrations:

Partial pressures at equilibrium are related to concentrations by the ideal gas law: .

8. Relation Between and

Substituting into the expression for :

where .

Sign of RelationExample
Solved Example 3
At , for is atm. Calculate .
Solution:

Only is a gas; pure solids are omitted from . So .

Solved Example 4
Given at for , calculate for .
Solution:

The new reaction is the reverse of the original, then divided (multiplied) by .

Reversing: . Multiplying by : .

9. Characteristics of the Equilibrium Constant

  • Constant at a given temperature. (or ) has a fixed value for a particular reaction at a fixed temperature.
  • Independent of initial concentrations. Starting with any amounts of reactants and products, the same is obtained at equilibrium.
  • Independent of catalyst. A catalyst does not change - it only shortens the time to reach equilibrium.
  • Independent of pressure and volume changes (as long as temperature is unchanged).
  • Depends on the stoichiometry. If the equation is written differently, changes accordingly.
  • Reversal rule: If the equation is reversed, .
  • Multiplication rule: If the equation is multiplied by , .
  • Addition rule: If two equations are added, the resultant .
  • Depends only on temperature. Any change in temperature changes , following the van't Hoff equation.
Solved Example 5
Given equilibrium constants for the three reactions at temperature :
(i)
(ii)
(iii)
Find for .
Solution:

Adding all three: . By the addition rule, .

10. Significance of the Magnitude of

  • Very large (): Forward reaction goes nearly to completion. Products dominate at equilibrium. Concentration of reactants can often be neglected.
  • Very small (): Forward reaction hardly proceeds. Reactants dominate at equilibrium. Concentration of products can often be neglected.
  • Intermediate (): Both reactants and products are present in appreciable amounts at equilibrium.
tells us where equilibrium lies, not how fast it is reached. A reaction with a huge can still be extremely slow (e.g., has enormous but does not proceed at room temperature without a spark).

11. Units of the Equilibrium Constant

Depending on , carries units of and carries units of .

ReactionUnit of Unit of
DimensionlessDimensionless
Strictly speaking, the true (thermodynamic) equilibrium constant is expressed in terms of activities, which are dimensionless (each concentration or pressure divided by a standard reference value: for solutions, for gases). In that framework, is always unitless. For JEE and NEET calculations, we use the practical units shown above unless otherwise stated.

12. Degree of Dissociation ()

The degree of dissociation, , is the fraction of one mole of the reactant that has dissociated at equilibrium: . Percentage dissociation .

For a generic dissociation starting with moles:

Total moles at equilibrium .

Solved Example 6
One mole of is mixed with three moles of in a container. If of is converted to at , calculate and . Use .
Solution:

Reaction: . Moles of reacted ; hence reacted , formed .

Equilibrium moles: .

Equilibrium concentrations (in a vessel):

, . .

13. Vapour Density and Degree of Dissociation

For gaseous dissociation reactions where , vapour density measurements provide a direct way to find . Since total moles change on dissociation, so does the average molecular mass - and vapour density is directly proportional to molecular mass.

For starting with moles at fixed : total moles . Since vapour density is inversely proportional to number of moles (at constant and ):

where = initial vapour density (undissociated) and = vapour density at equilibrium.

Equivalent forms using molecular masses: .

This method is not applicable when (e.g., ) because the total number of moles does not change, so vapour density is unaffected.
Solved Example 7
When is heated, it dissociates: . The vapour density of the mixture at is . Find the degree of dissociation.
Solution:

Molar mass of . Initial vapour density .

Here (one mole of gives two moles of products).

So is about dissociated at .

14. Simultaneous Equilibria JEE Advanced

Sometimes two or more equilibria share a common species in the same container. The equilibrium concentration of the shared species is the total from all equilibria, and this shared value appears in each expression.

Example: solid decomposes and, in the presence of a catalyst, part of the product also dissociates:

At equilibrium, if we let the initial pressure of from step 1 be and atm of it further dissociates in step 2, then , , , and (unchanged, since step 2 does not affect ).

Solved Example 8
Solid dissociates as at with . In the presence of a catalyst, part of the dissociates: . If at equilibrium is , calculate for the second equilibrium.
Solution:

Let atm of (and initially ) be produced from step 1, and atm of dissociate in step 2. Then . Given , so atm.

At equilibrium: , .

From step 1:

atm.

Therefore atm and:

Common Mistakes to Avoid

Watch out
  • Including pure solids or pure liquids in the expression. For , write , not .
  • Confusing the rate constant with the equilibrium constant . is the ratio ; alone tells you nothing about equilibrium.
  • Assuming a catalyst changes . A catalyst speeds up both forward and reverse reactions equally - is unchanged.
  • Using the wrong in . Count only gaseous species. Solids and liquids do not contribute to .
  • Applying the vapour density formula when . For , the total moles do not change; vapour density stays the same regardless of .
  • Forgetting to raise to the correct power when the equation is multiplied. Doubling the equation squares ; halving it takes the square root.
  • Assuming a large means a fast reaction. tells you how far equilibrium lies, not how fast it is reached - those are separate questions.
  • Writing partial pressures in Pa instead of atm. The standard state for gases is , so values in JEE problems assume atm. Using SI (Pa) gives a different numerical value.

Frequently Asked Questions

What is the difference between physical and chemical equilibrium?

Physical equilibrium involves a change of state without any change in chemical identity - for example, ice melting to water, or water evaporating into vapour. Chemical equilibrium involves a reversible chemical reaction, where reactant molecules and product molecules interconvert. Both types share the feature that rates of the forward and reverse processes become equal.

Why is chemical equilibrium called dynamic?

At equilibrium, the forward and reverse reactions do not stop - they continue at the molecular level. Reactant molecules keep forming products, and product molecules keep re-forming reactants, but at equal rates. The net observable change is zero, but activity at the microscopic level continues, which is why it is called "dynamic" rather than "static".

When are and equal?

when , meaning the total number of moles of gaseous reactants equals the total moles of gaseous products. Examples include and . In these cases the factor becomes .

Does a catalyst change the value of the equilibrium constant?

No. A catalyst lowers the activation energy of both the forward and reverse reactions equally, so it speeds up the approach to equilibrium without changing the position of equilibrium. The value of depends only on temperature; catalyst presence, initial concentrations, and pressure changes do not affect it.

What does a very large value of signify?

A very large equilibrium constant (typically ) means the reaction is strongly product-favoured - the forward reaction goes nearly to completion, and the equilibrium mixture contains mostly products with negligible amounts of reactants. Note that a large does not tell us anything about how fast equilibrium is reached; that is decided by the rate constants and activation energy.

Why are pure solids and pure liquids excluded from the equilibrium constant expression?

The "active mass" of a pure solid or pure liquid is proportional to its density, which remains constant throughout the reaction (as long as some of the pure substance is present). Since these constants can be absorbed into the equilibrium constant itself, their effective activities are conventionally taken as unity, and they are omitted from the expression. For example, for is simply .

How does the equilibrium constant change if the equation is reversed or multiplied?

Reversing the equation replaces with . Multiplying the entire equation by a factor raises to the power : . Adding two equations gives an overall . These rules follow directly from the mathematical form of the expression and are widely used to relate equilibrium constants of related reactions.

Can the equilibrium constant have units?

In practice, carries units of and has units of . When , is dimensionless. Rigorously (thermodynamically), is defined using activities - dimensionless quantities equal to concentration or pressure divided by a standard reference - so the true thermodynamic is always unitless. Both conventions are used in exams; follow the numerical convention consistent with the problem.

Previous year questions on Law of Chemical Equilibrium And Equilibrium Constant

28 questions from past papers, each with a step-by-step solution.

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