Respuesta :
Answer:
The empirical formula of the organic compound is = [tex]C_2H_6S_1[/tex]
Explanation:
At STP, 1 mole of gas occupies 22.4 L of volume.
Moles of [tex]CO_2[/tex] gas at STP occupying 2.0 L = n
[tex]n\times 22.4L=2.0L[/tex]
[tex]n=\frac{2.0 L}{22.4 L}=0.08929 mol[/tex]
Moles of carbon in 0.08920 mol = 1 × 0.08920 mol = 0.08920 mol
Moles of [tex]H_2O[/tex] gas at STP occupying 3.0 L = n'
[tex]n'\times 22.4L=3.0L[/tex]
[tex]n'=\frac{3.0 L}{22.4 L}=0.1339 mol[/tex]
Moles of hydrogen in 0.1339 moles of water vapor = 2 × 0.1339 mol = 0.2678 mol
Moles of [tex]SO_2[/tex] gas at STP occupying 1.0 L = n''
[tex]n''\times 22.4L=1.0L[/tex]
[tex]n''=\frac{1.0 L}{22.4 L}=0.04464 mol[/tex]
Moles of sulfur in 0.04464 mol = 1 × 0.04464 mol = 0.04464 mol
Moles of carbon , hydrogen and sulfur constituent of that organic compound .
Moles of carbon in 0.08920 mol = 1 × 0.08920 mol = 0.08920 mol
Moles of hydrogen in 0.1339 moles of water vapor = 2 × 0.1339 mol = 0.2678 mol
Moles of sulfur in 0.04464 mol = 1 × 0.04464 mol = 0.04464 mol
For empirical; formula divide the least number of moles from all the moles of elements.
carbon = [tex]\frac{0.08920 mol}{0.04464 mol}=2[/tex]
Hydrogen = [tex]\frac{0.2678 mol}{0.04464 mol}=6[/tex]
Sulfur = [tex]\frac{0.04464 mol}{0.04464 mol}=1[/tex]
The empirical formula of the organic compound is = [tex]C_2H_6S_1[/tex]
