Answer:
The concentration of nitrate ions in solution is 0.8 M.
Explanation:
In solution A;
[tex]NaCl(aq)\rightarrow Na^+(aq)+Cl^-(aq)[/tex]
Moles of sodium chloride in solution:
[tex]3.00M=\frac{moles}{3.00L}[/tex]
Moles of sodium chloride = 9 mole
In solution B;
[tex]AgNO_3(aq)\rightarrow Ag^+(aq)+NO_{3}^-(aq)[/tex]
Moles of sodium chloride in solution:
[tex]2.00M=\frac{moles}{2.00L}[/tex]
Moles of sodium chloride = 4 mole
In solution C;
[tex]AgNO_3+NaCl\rightarrow AgCl+NaNO_3[/tex]
1 mol of silver chloride reacts with 1 mol of sodium chloride to give 1 mol of silver chloride and 1 mol of sodium nitrate.
Then 4 mol silver chloride reacts with 4 mol of sodium chloride to give 4 mol of silver chloride and 4 mol of sodium nitrate.
1 mol silver nitrate gives 1 mol of nitrate ions.
So, 4 moles of silver nitrate will gives 4 mole of nitrate.
Total volume of solution = 3.00 L+ 2.00 L = 5.00 L
Concentration of nitrate ions in solution:
[tex][NO_{3}^-]=\frac{4 mol}{5 L}=0.8 mol/L[/tex]
The concentration of nitrate ions in solution is 0.8 M.
