Answer:
- Empirical:
[tex]C_3H_7[/tex]
- Molecular:
[tex]C_6H_{14}[/tex]
Explanation:
Hello,
In this case, based on the information regarding the combustion, the moles of carbon turn out:
[tex]n_C=21.71gCO_2*\frac{1molCO_2}{44gCO_2}*\frac{1molC}{1molCO_2}=0.493molC[/tex]
Moreover, the moles of hydrogen:
[tex]n_H=10.37gH_2O*\frac{1molH_2O}{18gH_2O}*\frac{2molH}{1molH_2O}=1.152molH[/tex]
Thus, the subscripts of carbon and hydrogen in the hydrocarbon turn out:
[tex]C=\frac{0.4934}{0.4934}=1\\H=\frac{1.15222}{0.4934}=2.335\\CH_{2.335}[/tex]
Now, looking for a suitable whole number we obtain the following empirical formula as 2.335 times 3 is 7 for hydrogen:
[tex]C_3H_7[/tex]
In such a way, that compound has a molar mass of 43 g/mol, thus, the whole compound's molar mass is 86.18 g/mol for which the molecular formula is twice the empirical one, therefore:
[tex]C_6H_{14}[/tex]
Which is hexane.
Best regards.
