What is chloride ion concentration when....?

Question

.... a $20mL$ volume of $"aluminum sulfate"$ at $0.20molL^-1$ concentration is mixed with a $20mL$ volume of $"barium chloride"$ at $6.6molL^-1$ concentration?

2418 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2017-05-31T07:09:57

Well we need a stoichiometric reaction........and it turns out that chloride is a spectator ion. We get $[Cl^-]=6.6*mol*L^-1$ .

$Al_2(SO_4)_3(aq) + 3BaCl_2(aq) rarr 3BaSO_4(s)darr + 2AlCl_3(aq)$

Note that barium sulfate is insoluble in aqueous solution. This is an experimental fact that simply must be known.

$"Moles of aluminum sulfate"=20xx10^-3*Lxx0.20*mol*L^-1=4.0xx10^-3*mol.$

$"Moles of barium chloride"=20xx10^-3*Lxx6.6*mol*L^-1=0.132*mol.$

And thus $[Cl^-]=(2xx0.132*mol)/(20xx10^-3*L+20xx10^-3*L)$

$=??*mol*L^-1$ .

Why did I double the numerator in the calculation?