A solution containing 10 g/dm3 of urea (molecular mass = 60 g mol-1) is isotonic with a 5 % solution of a non-volatile solute. The molecular mass of this non-volatile solute is:

1. 25 g mol-1 2. 300 g mol-1
3. 350 g mol-1 4. 200 g mol-1

Subtopic:  Introduction & Colligative properties |
 82%
From NCERT
AIPMT - 2006
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1.00 g of non-electrolyte solute (molar mass 250 g mol-1) was dissolved in 51.2 g of benzene. If the freezing point depression constant, Kf of benzene is 5.12 mol-1 kg K, the freezing point of benzene will be lowered by:

1. 0.4 K

2. 0.3 K

3. 0.5 K

4. 0.2 K

Subtopic:  Elevation of Boiling Point |
 84%
From NCERT
AIPMT - 2006
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During osmosis, the flow of water through a semi-permeable membrane is:

1. From a solution having higher concentration only. 
2. From both sides of the semi-permeable membrane with equal flow rates.
3. From both sides of the semi-permeable membrane with unequal flow rates.
4. From a solution having lower concentration only.
Subtopic:  Osmosis & Osmotic Pressure |
From NCERT
AIPMT - 2006
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For an ideal solution, the correct option is -

1. mix G=0 at constant T and P

2. mix S=0 at constant T and P

3. mix V0 at constant T and P

4. mix H=0 at constant T and P

Subtopic:  Raoult's Law |
 79%
From NCERT
NEET - 2019
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The mixture among the following that forms maximum boiling azeotrope is:

1. Heptane + Octane
2. Water + Nitric acid
3. Ethanol + Water
4. Acetone + Carbon disulfide

Subtopic:  Azeotrope |
 68%
From NCERT
NEET - 2019
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0.5 molal aqueous solution of a weak acid (HX) is 20 % ionised. The lowering in the freezing point of the solution will be:
[Kf for water = 1.86 K kg mol-1]

1. -1.12 K

2. 0.56 K

3. 1.12 K

4. -0.56 K

Subtopic:  Depression of Freezing Point | Van’t Hoff Factor |
 54%
From NCERT
AIPMT - 2007
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A 0.0020 m aqueous solution of an ionic compound Co(NH3)5(NO2)Cl freezes at -0.0073 oC. The number of moles of ions that 1 mol of ionic compound produces on being dissolved in water will be:
(Kf = -1.86 oC/m)

1. 2 2. 3
3. 4 4. 1
Subtopic:  Depression of Freezing Point | Van’t Hoff Factor |
 66%
From NCERT
AIPMT - 2009
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An aqueous solution is 1.00 molal in KI. The vapour pressure of the solution can be increased by:

1. Addition of NaCl

2. Addition of Na2SO4

3. Addition of 1.00  molal Kl

4. Addition of water

Subtopic:  Relative Lowering of Vapour Pressure |
 62%
From NCERT
AIPMT - 2010
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The van’t Hoff factor, i, for a compound that undergoes
dissociation and association in a solvent is, respectively:

1. Less than one and less than one.
2. Greater than one and less than one.
3. Greater than one and greater than one.
4. Less than one and greater than one.

Subtopic:  Van’t Hoff Factor |
 85%
From NCERT
AIPMT - 2011
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The freezing point depression constant for water is 1.86 oC m-1. If 5.00 g Na2SOis dissolved in 45.0 g H2O, the freezing point is changed by -3.82 oC. The van’t Hoff factor for Na2SO4 is:

1. 2.63 2. 3.11
3. 0.381 4. 2.05
Subtopic:  Depression of Freezing Point |
 69%
From NCERT
AIPMT - 2011
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