NVAEasyJEE 2023Stoichiometry & Calculations

JEE Chemistry 2023 Question with Solution

The mass of NH3\mathrm{NH_3} produced when 131.8kg131.8 \, \text{kg} of cyclohexanecarbaldehyde undergoes Tollens test is _____ kg\text{kg}. (Nearest Integer) Given: Molar Mass of C\mathrm{C} = 12g/mol12 \, \text{g/mol}, N\mathrm{N} = 14g/mol14 \, \text{g/mol}, O\mathrm{O} = 16g/mol16 \, \text{g/mol}.

Answer

Correct answer:60

Step-by-step solution

Standard Method

Given: Mass of cyclohexanecarbaldehyde = 131.8kg131.8 \, \text{kg}

Find: Mass of NH3\mathrm{NH_3} produced.

The chemical equation for the reaction is

Cyclohexanecarbaldehyde+2[Ag(NH3)2]OHCyclohexanecarboxamide+3NH3+2Ag+H2O\text{Cyclohexanecarbaldehyde} + 2[\mathrm{Ag(NH_3)_2}]\mathrm{OH} \rightarrow \text{Cyclohexanecarboxamide} + 3\mathrm{NH_3} + 2\mathrm{Ag} + \mathrm{H_2O}

The molecular weight of cyclohexanecarbaldehyde is taken as

12×8+14+16=112g/mol12 \times 8 + 14 + 16 = 112 \, \text{g/mol}

The number of moles of cyclohexanecarbaldehyde is

131.8×1000112=1176.8mol\frac{131.8 \times 1000}{112} = 1176.8 \, \text{mol}

From the stoichiometry, 11 mole of cyclohexanecarbaldehyde produces 33 moles of NH3\mathrm{NH_3}. So,

Moles of NH3=3×1176.8=3530.4mol\text{Moles of } \mathrm{NH_3} = 3 \times 1176.8 = 3530.4 \, \text{mol}

The molar mass of NH3\mathrm{NH_3} is

17g/mol17 \, \text{g/mol}

Therefore, the mass of NH3\mathrm{NH_3} produced is

3530.4×17=60023.2g=60kg3530.4 \times 17 = 60023.2 \, \text{g} = 60 \, \text{kg}

Therefore, the required mass of NH3\mathrm{NH_3} is 60kg60 \, \text{kg}, so the numerical answer is 60.

Stoichiometric Ratio Method

Given: Cyclohexanecarbaldehyde produces 33 moles of NH3\mathrm{NH_3} per mole.

Find: Mass of NH3\mathrm{NH_3} directly from mass ratio.

Use the mole ratio and molar masses together:

112g of cyclohexanecarbaldehyde3×17=51g of NH3112 \, \text{g of cyclohexanecarbaldehyde} \rightarrow 3 \times 17 = 51 \, \text{g of } \mathrm{NH_3}

So,

131.8kg131.8×51112kg131.8 \, \text{kg} \rightarrow 131.8 \times \frac{51}{112} \, \text{kg} =60.0232kg= 60.0232 \, \text{kg}

Nearest integer = 60.

This works because stoichiometry lets us convert directly from reactant mass to product mass using the fixed mole ratio.

Common mistakes

  • Using the wrong stoichiometric ratio. The reaction produces 33 moles of NH3\mathrm{NH_3} per mole of aldehyde, not 11 mole. Always read the balanced equation before converting moles.

  • Forgetting to convert 131.8kg131.8 \, \text{kg} into grams before using molar mass in g/mol\text{g/mol}. Units must be consistent when calculating moles.

  • Using an incorrect molar mass for NH3\mathrm{NH_3} or the aldehyde. Compute molar masses carefully from the given atomic masses before applying stoichiometry.

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