Answer:
82.18% is the mass percentage of bromine in the original compound.
Explanation:
Mass of AgBr = 1.1166 g
Moles of AgBr = [tex]\frac{1.1166 g}{187.77 g/mol}=0.0059466 mol[/tex]
[tex]AgNO_3(aq)+Br^-(aq)\rightarrow AgBr(s)+NO_3^{-} (aq)[/tex]
According to reaction, 1 mole of AgBr is obtained from 1 mole of bromide ions , then 0.0059466 moles of AgBr will be formed from :
[tex]\frac{1}{1}\times 0.0059466 mol=0.0059466 mol[/tex] of bromide ions
Mass of 0.005939 moles of bromide ions :
0.0059466 mol × 79.90 g/mol = 0.4751 g
Mass of the sample = 0.5781 g
Mass percentage of bromine in sample :
[tex]=\frac{0.4751 g}{0.5781 g}\times 100=82.18\%[/tex]
82.18% is the mass percentage of bromine in the original compound.
