NVAEasyJEE 2023Mole Concept

JEE Chemistry 2023 Question with Solution

When 0.01mol0.01 \, \text{mol} of an organic compound containing 60%60\% carbon was burnt completely, 4.4g4.4 \, \text{g} of CO2CO_2 was produced. The molar mass of the compound is _____ g mol1\text{g mol}^{-1} (nearest integer).

Answer

Correct answer:200

Step-by-step solution

Standard Method

Given: Amount of compound = 0.01mol0.01 \, \text{mol}, carbon content = 60%60\%, and 4.4g4.4 \, \text{g} of CO2CO_2 is produced on complete combustion.

Find: The molar mass of the compound.

From the solution:

4.444=0.1mol of CO2\frac{4.4}{44} = 0.1 \, \text{mol of } CO_2

So, moles of carbon atoms present in the burnt sample = 0.1mol0.1 \, \text{mol}.

Hence mass of carbon in the sample:

0.1×12=1.2g0.1 \times 12 = 1.2 \, \text{g}

Since carbon is 60%60\% by mass, if the sample mass is mm g, then

0.60m=1.20.60m = 1.2

Therefore,

m=1.20.60=2.0gm = \frac{1.2}{0.60} = 2.0 \, \text{g}

This mass corresponds to 0.01mol0.01 \, \text{mol} of the compound. Therefore molar mass is

M=2.00.01=200g mol1M = \frac{2.0}{0.01} = 200 \, \text{g mol}^{-1}

Therefore, the molar mass of the compound is 200g mol1200 \, \text{g mol}^{-1}.

Checking the extracted working

The provided the solution contains an inconsistent line: it states "Mass of carbon in the compound: 0.01×60100=0.006g0.01 \times \frac{60}{100} = 0.006 \, \text{g}", which is dimensionally incorrect because 0.010.01 is the amount in moles, not mass in grams.

Using the rest of the provided working and the combustion data:

  1. Convert 4.4g4.4 \, \text{g} of CO2CO_2 to moles.
  2. Use those moles to get mass of carbon in the sample.
  3. Since carbon is 60%60\% of the sample mass, obtain the sample mass.
  4. Divide sample mass by 0.01mol0.01 \, \text{mol} to get molar mass.

This gives the consistent final result 200g mol1200 \, \text{g mol}^{-1}, matching the listed correct answer.

Common mistakes

  • Using 0.010.01 directly as mass in grams is incorrect because it represents moles, not grams. First determine the sample mass from the combustion data, then divide by moles to get molar mass.

  • Treating 4.4g4.4 \, \text{g} of CO2CO_2 as mass of carbon is wrong. Only the carbon part of CO2CO_2 contributes to carbon mass, so convert to moles of CO2CO_2 and then multiply by 12g mol112 \, \text{g mol}^{-1}.

  • Applying the 60%60\% carbon composition in the wrong direction leads to error. If carbon mass is known, sample mass is found from sample mass=carbon mass0.60\text{sample mass} = \frac{\text{carbon mass}}{0.60}, not by multiplying again by 0.600.60.

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