Answer:
Whether barium chloride solution was pure
Explanation:
We may answer whether barium chloride was pure. The sequence of this experiment might be depicted by the following balanced chemical equations:
[tex]BaCl_2 (aq)\rightarrow Ba^{2+} (aq) + 2 Cl^- (aq)[/tex]
[tex]Ba^{2+} (aq) + SO_4^{2-} (aq)\rightarrow BaSO_4 (s)[/tex]
Having a total sample of 10.0 grams, we would firstly find the mass percentage of barium in barium chloride:
[tex]\omega_{Ba^{2+}} = \frac{M_{Ba}}{M_{BaCl_2}} = \frac{137.327 g/mol}{208.23 g/mol\cdot 100\% = 65.95 \%[/tex]
This means in 10.0 g, we have a total of:
[tex]m_{Ba^{2+}} = 10.0 g\cdot 0.6595 = 6.595 g[/tex] of barium cations.
The precipitate is then formed and we measure its mass. Having its mass determined, we'll firstly find the percentage of barium in barium sulfate using the same approach:
[tex]\omega_{Ba} = \frac{137.327 g/mol}{233.38 g/mol}\cdot 100\% = 58.84 \%[/tex]
Multiplying the mass we obtained by the fraction of barium will yield mass of barium in barium sulfate. Then:
