Answer: The empirical formula for the given compound is [tex]BrF_3[/tex]
Explanation:
We are given:
Percentage of Br = 58.37 %
Percentage of F = 41.63 %
Let the mass of compound be 100 g. So, percentages given are taken as mass.
Mass of Br = 58.37 g
Mass of F = 41.63 g
To formulate the empirical formula, we need to follow some steps:
Moles of Bromine =[tex]\frac{\text{Given mass of Bromine}}{\text{Molar mass of Bromine}}=\frac{58.37g}{79.90g/mole}=0.73moles[/tex]
Moles of Fluorine = [tex]\frac{\text{Given mass of Fluorine}}{\text{Molar mass of Fluorine}}=\frac{41.63g}{19g/mole}=2.19moles[/tex]
For the mole ratio, we divide each value of the moles by the smallest number of moles calculated which is 0.73 moles.
For Bromine = [tex]\frac{0.73}{0.73}=1[/tex]
For Fluorine = [tex]\frac{2.19}{0.73}=3[/tex]
The ratio of Br : F = 1 : 3
Hence, the empirical formula for the given compound is [tex]BrF_3[/tex]
