!! LONG ANSWER !!
Here's how you'd go about solving this problem.
Both silver nitrate and calcium chloride are soluble in aqueous solution, but when mixed together will form a precipitate, silver chloride, AgCl, and another soluble compound, calcium nitrate, Ca(NO_3)_2.
AgNO_(3(aq)) -> Ag_((aq))^(+) + NO_(3(aq))^(-)
CaCl_(2(aq)) -> Ca_((aq))^(2+) + 2Cl_((aq))^(-)
Notice that 1 mole of silver nitrate produces 1 mole of Ag^(+) and 1 mole of NO_3^(-) ions, while 1 mole of calcium chloride produces 1 mole of Ca^(2+) and 2 moles of Cl^(-) ions.
Use the molarities of the two solutions to determine how many moles of each ion you get
C = n/V => n = C * V
n_(AgNO_3) = "0.500 M" * 100.0 * 10^(-3)"L" = "0.0500 moles " AgNO_3
n_(CaCl_2) = "0.500 M" * 100.0 * 10^(-3)"L" = "0.0500 moles " CaCl_2
This corresponds to
n_(Ag^(+)) = n_(AgNO_3) = "0.0500 moles " Ag^(+)
n_(NO_3^(-)) = n_(AgNO_3) = "0.0500 moles " NO_3^(-)
n_(Ca^(2+)) = n_(CaCl_2) = "0.0500 moles " Ca^(2+)
n_(Cl^(-)) = 2 * n_(CaCl_2) = "0.100 moles " Cl^(-)
The balanced chemical equation for this double replacement reaction will be
2AgNO_(3(aq)) + CaCl_(2(aq)) -> 2AgCl_((s)) + Ca(NO_3)_(2(aq))
The complete ionic equation will be
2Ag_((aq))^(+) + 2NO_(3(aq))^(-) + Ca_((aq))^(2+) + 2Cl_((aq))^(-) -> 2AgCl_((s)) + Ca_((aq))^(2+) + 2NO_(3(aq))^(-)
The net ionic equation for this reaction looks like this
Ag_((aq))^(+) + Cl_((aq))^(-) -> AgCl_((s))
The important thing to notice here is that Ca^(2+) and NO_3^(-) are spectator ions, which means that the number of moles of each present in the final solution will be equal to the number of moles of each added when the two solutions are mixed.
Since the Ag^(+) and Cl^(-) ions form the precipitate, the number of moles of each present in the final solution will not be equal to the number of moles of each added.
The volume of the final solution will be
V_"total" = V_("AgNO_3) + V_(CaCl_2)
V_"total" = 100.0 + 100.0 = "200.0 mL"
Now, according to the net ionic equation, the silver cations and the chloride anions react in a 1:1 mole ratio; since you have twice as many moles of Cl^(-) available to react, Ag^(+) will act as a limiting reagent.
In other words, all the Ag^(+) will be consumed, readucing the number of Cl^(-) moles by half in the process.
n_(Cl^(-)"remaining") = n_(Cl^(-)) - n_(Ag^(+)) = 0.100 - 0.0500 = "0.0500 moles"
n_(Ag^(+)"remaining") = 0
Therefore, the concentrations of the ions present in solution will be
C_(Ag^(+)) = 0
C_(Ca^(2+)) = n/V_"total" = "0.0500 moles"/(200 * 10^(-3)"L") = color(green)("0.250 M")
C_(NO_3^(-)) = C_(Ca^(2+)) = color(green)("0.250 M")
C_(Cl^(-)) = C_(Ca^(2+)) = color(green)("0.250 M")
