JEE Main 2013 — Some Basic Concepts Of Chemistry Question with Solution
From: JEE Main 2013 (Offline)
Question
A gaseous hydrocarbon gives upon combustion 0.72 g of water and 3.08 g of CO2. The empirical formula of the hydrocarbon is
Choose an option
Show full solutionCorrect option: D
Correct answer
DC7H8
Step-by-step explanation
Required reaction,
CH + O2 CO2 + H2O
0.72 gm of H2O = mole of H2O = 0.04 mole of H2O
In one H2O molecule 2 hydrogen atoms present.
So in 0.04 mole of H2O molecules 20.04 = 0.08 moles of H atoms present.
0.72 gm of CO2 = mole of CO2 = 0.07 mole of CO2
And in one CO2 molecule 1 C atom present.
So in 0.07 mole of CO2 molecules 0.071 = 0.07 moles of C atoms present
C : H = 0.07 : 0.08 = 7 : 8
Empirical formula of hydrocarbon = C7H8
CH + O2 CO2 + H2O
0.72 gm of H2O = mole of H2O = 0.04 mole of H2O
In one H2O molecule 2 hydrogen atoms present.
So in 0.04 mole of H2O molecules 20.04 = 0.08 moles of H atoms present.
0.72 gm of CO2 = mole of CO2 = 0.07 mole of CO2
And in one CO2 molecule 1 C atom present.
So in 0.07 mole of CO2 molecules 0.071 = 0.07 moles of C atoms present
C : H = 0.07 : 0.08 = 7 : 8
Empirical formula of hydrocarbon = C7H8
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