Which of the following has the lowest freezing point?

  • A
    $1 \ m \ NaCl$ solution
  • B
    $1 \ m \ KCl$ solution
  • C
    $1 \ m \ CaCl_2$ solution
  • D
    $1 \ m \ \text{Urea}$ solution

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The elevation of boiling point of $0.10 \ m$ aqueous $CrCl_{3} \cdot xNH_{3}$ solution is two times that of $0.05 \ m$ aqueous $CaCl_{2}$ solution. The value of $x$ is.........
[Assume $100 \%$ ionisation of the complex and $CaCl_{2},$ coordination number of $Cr$ as $6,$ and that all $NH_{3}$ molecules are present inside the coordination sphere $]$

The freezing point of an equimolal aqueous solution will be highest for:

$0.1 \ m$ solutions of sodium sulphate,urea,and sodium chloride are taken. The correct ratio of the elevation of boiling point of these solutions is

Which of the following aqueous solutions has the highest boiling point?

Observe the following statements:
Statement-$I$: The boiling point of $0.1 \ M$ urea solution is less than that of $0.1 \ M$ $KCl$ solution.
Statement-$II$: Elevation of boiling point is inversely proportional to molar mass of solute.
The correct answer is:

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