Answer:
c) 11 g of calcium fluoride (CaF2)
Explanation:
Given :
Mass of solvent = M = 1000 g = 1 kg
Formula:
The depression in freezing point is given as:
[tex]\Delta T = k_{f}*m[/tex]
where kf = freezing point depression constant for solvent
[tex]m = molality = \frac{moles of solute}{kg solvent}[/tex]
[tex]moles = \frac{mass}{molar mass}[/tex]
Calculation:
a) Mass of NaCl = 5.0 g
Molar mass = 58.44 g/mol
[tex]Moles NaCl = \frac{5}{58.44} =0.0856[/tex]
[tex]Molality(NaCl) = \frac{0.0856 moles}{ 1 kg water} = 0.0856 m[/tex]
[tex]\Delta T = k_{f}*0.0856[/tex]
b) Mass of KCl = 9.2 g
Molar mass = 74.55 g/mol
[tex]Moles KCl = \frac{9.2}{74.55} =0.1234[/tex]
[tex]Molality(KCl) = \frac{0.1234 moles}{ 1 kg water} = 0.1234 m[/tex]
[tex]\Delta T = k_{f}*0.1234[/tex]
c) Mass of CaF2 = 11.0 g
Molar mass = 78 g/mol
[tex]Moles CaF2= \frac{11}{78} =0.1410[/tex]
[tex]Molality(CaF2) = \frac{0.1410 moles}{ 1 kg water} = 0.1410 m[/tex]
[tex]\Delta T = k_{f}*0.1410[/tex]
d) Mass of glucose = 20.0 g
Molar mass = 180 g/mol
[tex]Moles glucose = \frac{20}{180} =0.1111[/tex]
[tex]Molality(glucose) = \frac{0.1111 moles}{ 1 kg water} = 0.1111 m[/tex]
[tex]\Delta T = k_{f}*0.1111[/tex]
Therefore, CaF2 will produce the greatest freezing point depression
