Which of the following statements is incorrect? Question 8 options: a) In genera
ID: 1015202 • Letter: W
Question
Which of the following statements is incorrect?
Question 8 options:
a)
In general, the solubility of solids in water increases with increasing temperature.
b)
In general, the solubility of gases in water increases with increasing temperature.
c)
In general, the solubility of gases in water increases with increasing pressure.
d)
In general, the solubility of solids in water are unaffected by increasing pressure.
e)
All of these statements are incorrect.
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Question 9 (1 point) Question 9 Unsaved
Which of these ions is generally insoluble in water?
Question 9 options:
a)
acetate (C2H3O2–)
b)
ammonium (NH4+)
c)
sulfide (S2–)
d)
nitrate (NO3–)
e)
sodium cation (Na+)
Which solution would have a freezing point of –7.50°C?
(Kf H2O = 1.86°C/m)
Question 12 options:
a)
1.34 m C2H5OH (ethanol) solution
b)
2.16 m C6H12O6 (glucose) solution
c)
3.50 m HOCH2CH2OH (ethylene glycol) solution
d)
4.03 m C12H22O11 (sucrose) solution
e)
5.86 m HOCH2CH2(OH)CH2OH (glycerol) solution
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Question 13 (1 point) Question 13 Unsaved
Which of these same solutions would have a boiling point of 103.00°C?
(Kb H2O = 0.512°C/m)
Question 13 options:
a)
1.34 m C2H5OH (ethanol) solution
b)
2.16 m C6H12O6 (glucose) solution
c)
3.50 m HOCH2CH2OH (ethylene glycol) solution
d)
4.03 m C12H22O11 (sucrose) solution
e)
5.86 m HOCH2CH2(OH)CH2OH (glycerol) solution
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Question 14 (1 point) Question 14 Unsaved
How would you prepare the glucose solution (2.16 m) from the previous question?
(Mm C6H12O6 = 180.16 g/mol)
Question 14 options:
a)
Add 0.720 moles of glucose to 383 grams of water.
b)
Add 45.0 grams of glucose to 0.152 kg of water.
c)
Add 1.45 moles of glucose to 671 grams of water.
d)
Add 80.0 grams of glucose to 0.312 kg of water.
e)
None of the above choices are correct.
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Question 15 (1 point) Question 15 Unsaved
What is the mass percentage of the ethylene glycol solution (3.50 m) from the previous question?
(Mm HOCH2CH2OH = 62.07 g/mol)
Question 15 options:
a)
17.8 %
b)
21.7 %
c)
25.1 %
d)
29.7 %
e)
None of the above choices are correct.
Explanation / Answer
8)
we know that
solubility of gases in decreases with increase in temperature
so
the incorrect statement is b)
9) in general acetate , ammonium , sodium and nitrate ions are soluble in water
sulfide ion is insoluble in water
so
the answer is C) sulfide (S2-)
12)
we know that
depression in freezing point is given by
dTf = freezing point of water - freezing point of solution
dTf = 0 - (-7.5)
dTf = 7.5
now
we know that
dTf = i x Kf x m
7.5 = i x 1.86 x m
i x m = 4.0322
now
all the given solutions are non electrolytes
so i = vanthoff factor = 1
so
i x m = 4.0322
1 x m = 4.0322
m = 4.0322
so
the molality of the solution should be 4.0322
from the given solutions
we can see that
the solution should be sucrose
so
the answer is d) 4.03 m sucrose
13)
we know that
elevation in boiling point is given by
dTb = boiling point of solution - boiling point of water
dTb = 103 - 100
dTb = 3
now
we know that
dTb = i x Kb x m
3 = i x 0.512 x m
i x m = 5.86
now
all the given solutions are non electrolytes
so i = vanthoff factor = 1
so
i x m = 5.86
1 x m = 5.86
m = 5.86
so
the molality of the solution should be 5.86
from the given solutions
we can see that
the solution should be glycerol
so
the answer is e) 5.86 m glycerol solution
14)
we know that
molality = moles of glucose x 1000 / mass of water (g)
so
a) molality = 0.72 x 1000 / 383 = 1.88
b) moles of glucose = 45 / 180 = 0.25
molality = 0.25 x 1000 / 152 = 1.64
c) molality = 1.45 x 1000 / 671 = 2.16
d) moles of glucose = 80 / 180 = 0.4444
molality = 0.444 x 1000 / 312 = 1.424
so
the answer is c) add 1.45 moles of glucose to 671 grams of water
15)
consider 1000 g of solution
now
molality= moles of ethylene glycol x 1000 / mass of water (g)
3.5 = moles of ethylene glycol x 1000 / 1000
moles of ethylene glycol = 3.5
now
moles of ethylene glycol = 3.5 x 62.07
moles of ethylene glycol = 217.245
now
% mass = moles of ethylene glycol x 100 / mass of solution
% mass = 217.245 x 100 / 1000
% mass = 21.7
so
the answer is b) 21.7 %
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