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JEE Chemistry 2025 Question with Solution

A vessel at 1000K1000 \, \text{K} contains CO2CO_2 with a pressure of 0.5atm0.5 \, \text{atm}. Some of CO2CO_2 is converted into COCO on addition of graphite. If total pressure at equilibrium is 0.8atm0.8 \, \text{atm}, then KpK_p is:

  • A

    0.18atm0.18 \, \text{atm}

  • B

    1.8atm1.8 \, \text{atm}

  • C

    0.3atm0.3 \, \text{atm}

  • D

    3atm3 \, \text{atm}

Answer

Correct answer:B

Step-by-step solution

Standard Method

Given: The equilibrium reaction is

CO2+C2COCO_2 + C \rightleftharpoons 2CO

Initial pressure of CO2CO_2 is 0.5atm0.5 \, \text{atm} and total equilibrium pressure is 0.8atm0.8 \, \text{atm}.

Find: The value of KpK_p.

Let the decrease in pressure of CO2CO_2 be xx. Then the equilibrium pressures are:

  • CO2:0.5xCO_2 : 0.5 - x
  • CO:2xCO : 2x

Using the total pressure at equilibrium:

(0.5x)+2x=0.8(0.5 - x) + 2x = 0.8

So,

0.5+x=0.80.5 + x = 0.8 x=0.3x = 0.3

Detailed Equilibrium Calculation

Therefore, the equilibrium partial pressures are:

PCO2=0.50.3=0.2atmP_{CO_2} = 0.5 - 0.3 = 0.2 \, \text{atm} PCO=2×0.3=0.6atmP_{CO} = 2 \times 0.3 = 0.6 \, \text{atm}

Use Total Pressure Increase Directly

Now use the expression for the equilibrium constant:

Kp=(PCO)2PCO2K_p = \frac{(P_{CO})^2}{P_{CO_2}}

Substituting the equilibrium pressures:

Kp=(0.6)20.2=0.360.2=1.8atmK_p = \frac{(0.6)^2}{0.2} = \frac{0.36}{0.2} = 1.8 \, \text{atm}

Therefore, the correct option is B.

A quick observation is that the total pressure increases from 0.5atm0.5 \, \text{atm} to 0.8atm0.8 \, \text{atm}, so the net increase is 0.3atm0.3 \, \text{atm}. Since

CO2+C2COCO_2 + C \rightleftharpoons 2CO

one mole of gaseous reactant produces two moles of gaseous product, the net increase in gaseous pressure is exactly xx. Hence x=0.3x = 0.3 directly, after which the same KpK_p calculation follows.

Common mistakes

  • Taking the change in COCO as +x+x instead of +2x+2x is incorrect because the stoichiometric coefficient of COCO is 22. Always use the balanced reaction to write equilibrium changes.

  • Using total pressure 0.8atm0.8 \, \text{atm} directly in the KpK_p expression is wrong because KpK_p requires partial pressures of the gaseous species. First find equilibrium partial pressures of CO2CO_2 and COCO.

  • Including graphite in the equilibrium constant is incorrect because solid carbon does not appear in the expression for KpK_p. Only gaseous species are included here.

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