Respuesta :
Answer: Empirical formula is [tex]NO_2[/tex] and molecular formula is [tex]N_2O_4[/tex]
Explanation: To find the empirical and molecular formula, we follow few steps:
Step 1: Converting mass percent into mass
We are given the percentage of elements by mass. So, the total mass take will be 100 grams.
Therefore, mass of nitrogen = [tex]\frac{30.46}{100}\times 100g=30.46g[/tex]
Similarly, mass of oxygen = [tex]\frac{69.54}{100}\times 100g=69.54[/tex]
Step 2: Converting the masses into their respective moles
We use the formula:
[tex]Moles=\frac{\text{Given mass}}{\text{Molar mass}}[/tex]
Molar mass of Nitrogen = 14 g/mol
Molar mass of oxygen = 16 g/mol
Moles of nitrogen = [tex]\frac{30.46g}{14g/mol}=2.18moles[/tex]
Moles of oxygen = [tex]\frac{69.54g}{16g/mol}=4.35mol[/tex]
Step 3: Getting the mole ratio of nitrogen and oxygen by dividing the calculated moles by the lowest mole value.
Mole ratio of nitrogen = [tex]\frac{2.18}{2.18}=1[/tex]
Mole ratio of oxyegn = [tex]\frac{4.35}{2.18}=1.99\approx 2[/tex]
Step 4: The mole ratio of elements are represented as the subscripts in a empirical formula, we get
Empirical formula = [tex]N_1O_2=NO_2[/tex]
Step 5: For molecular formula, we divide the molar mass of the compound by the empirical molar mass.
Empirical molar mass of [tex]NO_2=(14\times 1)+(16\times 2)g/mol[/tex]
Empirical molar mass = 46 g/mol
Molar mass of the compound = 92 g/mol
[tex]n=\frac{\text{Molar mass}}{\text{Empirical molar mass}}[/tex]
[tex]n=\frac{92g/mol}{46g/mol}=2[/tex]
Now, multiplying each of the subscript of empirical formula by 'n', we get
Molecular formula = [tex]N_2O_4[/tex]
