$A$ solution of urea (molar mass $60 \, g \, mol^{-1}$) boils at $100.18 \, ^oC$ at atmospheric pressure. If $K_f$ and $K_b$ for water are $1.86$ and $0.512 \, K \, kg \, mol^{-1}$ respectively,the above solution will freeze at ........... $^oC$.

  • A
    $0.65$
  • B
    $-0.65$
  • C
    $6.54$
  • D
    $-6.54$

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Similar Questions

Match List-$I$ with List-$II$.
List-$I$ List-$II$
$A$. van't Hoff factor,$i$ $I$. Cryoscopic constant
$B$. $k_{f}$ $II$. Isotonic solutions
$C$. Solutions with same osmotic pressure $III$. $\frac{\text{Normal molar mass}}{\text{Abnormal molar mass}}$
$D$. Azeotropes $IV$. Solutions with same composition of vapour above it

Choose the correct answer from the options given below:

Column-$I$ (Various solutions)Column-$II$ (Their freezing point)
$a$. $0.1 \ M \ BaCl_2$ solution$p$. $271 \ K$
$b$. $0.1 \ M \ NaCl$ solution$q$. $270 \ K$
$c$. $0.1 \ M \ K_3[Fe(CN)_6]$ solution$s$. $269 \ K$
$d$. $0.1 \ M \ Al_2(SO_4)_3$ solution$r$. $268 \ K$
Given: Freezing point of $0.1 \ M$ sucrose solution $= 272 \ K$ and Freezing point of water $= 273 \ K$. Assume molarity $=$ molality. Which of the following options shows the correct matches?

The osmotic pressure of $0.1 \ M$ monobasic acid of $pH \ 3$ at $27^{\circ} C$ is (in $atm$)

The boiling point of water in a $0.1 \ m$ molal silver nitrate solution (solution $A$) is $x \ ^{\circ}C$. To this solution $A$,an equal volume of $0.1 \ m$ molal aqueous barium chloride solution is added to make a new solution $B$. The difference in the boiling points of water in the two solutions $A$ and $B$ is $y \times 10^{-2} \ ^{\circ}C$. (Assume: Densities of the solutions $A$ and $B$ are the same as that of water and the soluble salts dissociate completely. Use: Molal elevation constant,$K_b = 0.5 \ K \ kg \ mol^{-1}$; Boiling point of pure water as $100 \ ^{\circ}C$.) $(1)$ The value of $x$ is $(2)$ The value of $|y|$ is

In the depression of freezing point experiment,it is found that the:

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