Answer:
For KCl
[K+]= 12.5M and [Cl-] = 12.5M.
For CaCl2
[Ca+] = 2.03M and [Cl2] = 2 * 2.03 = 4.06M because there are 2 Cls in the compound
Then, for the amount of chlorine in both compound = 12.5 + 4.06 = 16.56M
Explanation:
Mass of KCl = 8.50 g
Molecular weight of KCl = (1 atom X 39.0983 Potassium) + (1 atom X 35.453 Chlorine) = 74.55 g/mol
Volume of KCl solution = 66.0 mL = O.066L
Volume of CaCl2 = 72.0 mL
Then,
Number of moles of KCl = mass of KCl/molecular weight
= 8.50/74.55 = 0.1140 Mol's
Initial molarity of KCl = Number of solute/Volume of the solution
0.1140/66*10^-3 = 1.727M
If volumes are additives, then add the of volume of KCl and CaCl2 together,
66 + 72 = 138 ml
To get the ion concentration, divide the molarity of each by the new volume
Then,
For KCL = mole of KCl/new volume
= 1.727/138*10^-3 = 12.5M/L
For CaCl2 mole of CaCl2/new volume = 0.280/138*10^-3 = 2.03M/L
