The solutes used in this experiment were non-electrolytes. Let\'s consider an ex
ID: 1088292 • Letter: T
Question
The solutes used in this experiment were non-electrolytes. Let's consider an experiment where a student compares the freezing point depression of a non-electrolyte solute to that of an ionic solute. The student adds 0.25 moles of table sugar, sucrose, to test tube #1 and 0.25 moles of an ionic solute, NaCl, to test tube #2. The student measures the freezing point of both solutions and determines that in tube # 1,the change in temperature is 3.0 C, while in tube # 2, the change in temperature is 5.7 C. Suggest an explanation for this observation.
Explanation / Answer
Answer:
we know that
depression in freezing point is given by
dTf = i x kf x m
given
0.25 moles of non ionic solute
and
0.25 moles of NaCl
assuming equal amount of solvent
molalities of both solutions are same
also
Kf is a constant
so
dTf depends on i
now
i is called vanthoff factor ,
it is the number of particles in the solution
now
for a non ionic solution
it does not dissociate in the solution
it stays as a big single particle
so
i = 1 for non ionic solutions
now
consider NaCl
NaCl ---> Na+ + Cl-
we can see that
there are two particles
so
i = 2 for NaCl
now
dTF non ioninc / dTf NaCl = i for non ionic / i for NaCl
dTf non ionic / dTf NaCl = 1 /2
dT NaCl = 2 x dTf non ionic
as we can see
dT for NaCl is 5.7 and dT for non ionic is 3
note : it is not exactly two times
becauses
NaCl may not dissociate 100%
so
the i value of NaCl will be a little less than 2