In June 2024
Answer to Question #313555 in Physical Chemistry for Nelly
25cm^3 of magnesium Chloride compleatly reacted with 12.5cm^3 of 0.2M silver nitrate to precipitate silver Chloride .Haw many grams of magnesium Chloride are contained in 500cm^3 of the solution
Moles of silver nitrate:
V = 12.5 cm3 = 12.5 mL = 0.0125 L
0.0125 L x 0.2 M = 0.0025 mol
MgCl2 + 2AgNO3 = Mg(NO3)2 + 2AgCl
The ratio of the reactants is 1 : 2
So, moles of MgCl2: 0.0025 x 1/2 = 0.00125 mol – in 25 cm3 of the solution
In 500 cm3: 0.00125 x 500 / 25 = 0.025 mol
Molar mass of MgCl2: 95.2 g/mol
Mass = 0.025 x 95.2 = 2.38 g
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