Which of the following is the heaviest?

  • A
    $25 \ g$ of mercury
  • B
    $2 \ moles$ of water
  • C
    $2 \ moles$ of carbon dioxide
  • D
    $4 \ g$ atoms of oxygen

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Similar Questions

$1 \, L$ aqueous solution of $H_{2}SO_{4}$ contains $0.02 \, mmol$ $H_{2}SO_{4}$. $50 \%$ of this solution is diluted with deionized water to give $1 \, L$ solution $(A)$. In solution $(A)$,$0.01 \, mmol$ of $H_{2}SO_{4}$ are added. Total $mmol$ of $H_{2}SO_{4}$ in the final solution is $...... \times 10^{-3} \, mmol$.

The number of moles of solute present in the solutions of $I$,$II$ and $III$ is respectively:
$I$. $500 \ mL$ of $0.2 \ M \ NaOH$
$II$. $200 \ mL$ of $0.1 \ N \ H_2SO_4$
$III$. $6 \ g$ of urea in $1 \ kg$ of water

What is the approximate volume occupied by $22.4 \, L$ of water vapor at $STP$ when it is condensed into liquid water?

The incorrect postulates of the Dalton's atomic theory are :
$A$. Atoms of different elements differ in mass.
$B$. Matter consists of divisible atoms.
$C$. Compounds are formed when atoms of different element combine in a fixed ratio.
$D$. All the atoms of given element have different properties including mass.
$E$. Chemical reactions involve reorganisation of atoms.
Choose the correct answer from the options given below :

Match List-$I$ with List-$II$.
List-$I$ List-$II$
$A$. $16 \ g \ CH_{4(g)}$ $I$. Weighs $28 \ g$
$B$. $1 \ g \ H_{2(g)}$ $II$. $60.2 \times 10^{23}$ electrons
$C$. $1 \ mole \ N_{2(g)}$ $III$. Weighs $32 \ g$
$D$. $0.5 \ mol \ SO_{2(g)}$ $IV$. Occupies $11.2 \ L$ volume at $STP$

Choose the correct answer from the options given below:

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