Question:medium

What is the mass of sodium chloride (\( \text{NaCl} \)) formed when 0.5 moles of sodium (\( \text{Na} \)) reacts with excess chlorine (\( \text{Cl}_2 \))?

Show Hint

Remember: In a chemical reaction, the number of moles of reactants and products are related by the stoichiometric coefficients in the balanced equation. Use these relationships to convert between moles and mass.
Updated On: Nov 26, 2025
  • \( 39 \, \text{g} \) 
     

  • \( 35.5 \, \text{g} \)
  • \( 29 \, \text{g} \) 
     

  • \( 70 \, \text{g} \)
Hide Solution

The Correct Option is C

Solution and Explanation

Provided data:

  • 0.5 moles of sodium (Na)
  • Excess chlorine (Cl₂)

Step 1: Balanced Chemical Equation

The balanced equation is:

\( 2 \, \text{Na} + \text{Cl}_2 \rightarrow 2 \, \text{NaCl} \)

Step 2: Moles of NaCl Formed

According to the balanced equation, 2 moles of Na yield 2 moles of NaCl. Therefore, 0.5 moles of Na will yield 0.5 moles of NaCl.

Step 3: Mass of NaCl Calculation

The molar mass of NaCl is:

\( \text{Molar mass of NaCl} = 23 + 35.5 = 58.5 \, \text{g/mol} \)

The mass of NaCl is calculated as:

\( \text{Mass of NaCl} = 0.5 \times 58.5 = 29.25 \, \text{g} \)

Conclusion:

The mass of sodium chloride produced is approximately \( 29 \, \text{g} \).

Was this answer helpful?
0