Respuesta :
Answer:
Molar concentration of magnesium ions in the final solution is 0.2 M.
Explanation:
[tex]c=\frac{n}{V}[/tex]
c = Concentration of the solution
n = moles of the compound
V = volume of the solution in L
1) Molarity of [tex]MgCl_2[/tex] solution = 0.100 M
Volume of [tex]MgCl_2[/tex] solution = 100.0 mL = 0.1 L
Moles of [tex]MgCl_2[/tex] in 100 mL solution= n
[tex]0.100 M=\frac{n}{0.1L}[/tex]
[tex]n=0.01 mol[/tex]
[tex]MgCl_2(aq)\rightarrow Mg^{2+}(aq)+2Cl^-(aq)[/tex]
1 mole of magnesium chloride gives 1 mol of magnesium ions and 2 moles of chloride ions.
Then 0.01 moles of magnesium chloride will give:
[tex]x=\frac{1}{1}\times 0.01 mol=0.01 mol[/tex] magnesium ions.
2) Molarity of [tex]Mg_3(PO_4)_2[/tex] solution = 0.100 M
Volume of [tex]Mg_3(PO_4)_2[/tex] solution = 100.0 mL = 0.1 L
Moles of [tex]Mg_3(PO_4)_2[/tex] in 100 mL solution= n'
[tex]0.100 M=\frac{n'}{0.1L}[/tex]
[tex]n'=0.01 mol[/tex]
[tex]Mg_3(PO_4)_2(aq)\rightarrow 3Mg^{2+}(aq)+2PO_{4}^-(aq)[/tex]
1 mole of magnesium phosphate gives 3 mol of magnesium ions and 2 moles of phosphate ions.
Then 0.01 moles of magnesium phosphate will give:
[tex]y=\frac{3}{1}\times 0.01 mol=0.03 mol[/tex] magnesium ions.
After mixing both solutions:
Moles of magnesium ions = x + y = 0.01 mol + 0.03 mol = 0.04 mol
Total volume after mixing = 0.1 L + 0.1 L = 0.2 L
Molar concentration of magnesium ions in the final solution:[tex][Mg^{2+}][/tex]
[tex][Mg^{2+}]=\frac{0.04 mol}{0.2 L}=0.2 mol/L[/tex]
