Answer:
[tex]M=0.727M[/tex]
Explanation:
Hello,
In this case, since iron (III) chloride (FeCl3) and barium chloride (BaCl2) are both chloride-containing compounds, we can compute the moles of chloride from each salt, considering the concentration and volume of the given solutions, and using the mole ratio that is 1:3 and 1:2 for the compound to chlorine:
[tex]n_{Cl^-}=0.50L*0.250\frac{molFeCl_3}{L}*\frac{3molCl^-}{1molFeCl_3}=0.375molCl^- \\\\n_{Cl^-}=0.425L*0.350\frac{molBaCl_2}{L}*\frac{2molCl^-}{1molBaCl_2}=0.2975molCl^-[/tex]
So the total mole of chloride ions:
[tex]N_{Cl^-}=0.2975mol+0.375mol=0.6725molCl^-[/tex]
And the total volume by adding the volume of each solution in L:
[tex]V=0.500L+0.425L=0.925L[/tex]
Finally, the molarity turns out:
[tex]M=\frac{0.6725molCl^-}{0.925L}\\ \\M=0.727M[/tex]
Best regards.
