How many grams of sodium chromate, [tex][tex]$Na_2CrO_4$[/tex][/tex], are needed to react completely with 44.7 g of silver nitrate, [tex]$AgNO_3$[/tex]?

Given the balanced chemical equation:

[tex]\[ 2AgNO_3 + Na_2CrO_4 \longrightarrow Ag_2CrO_4 + 2NaNO_3 \][/tex]



Answer :

Sure, let's solve this step by step:

1. Identify the Molar Masses:
- The molar mass of silver nitrate (AgNO₃) is 169.87 g/mol.
- The molar mass of sodium chromate (Na₂CrO₄) is 161.97 g/mol.

2. Calculate the Moles of Silver Nitrate:
- Given mass of AgNO₃ is 44.7 grams.
- To find the moles of AgNO₃, use the formula:
[tex]\[ \text{moles of AgNO₃} = \frac{\text{mass of AgNO₃}}{\text{molar mass of AgNO₃}} \][/tex]
[tex]\[ \text{moles of AgNO₃} = \frac{44.7 \text{ grams}}{169.87 \text{ g/mol}} \approx 0.2631 \text{ moles} \][/tex]

3. Determine the Moles of Sodium Chromate Needed:
- From the balanced equation [tex]\(2 \text{AgNO₃} + \text{Na₂CrO₄} \rightarrow \text{Ag₂CrO₄} + 2\text{NaNO₃}\)[/tex], the molar ratio of AgNO₃ to Na₂CrO₄ is 2:1.
- Therefore, the moles of Na₂CrO₄ needed will be half the moles of AgNO₃:
[tex]\[ \text{moles of Na₂CrO₄} = \frac{\text{moles of AgNO₃}}{2} \][/tex]
[tex]\[ \text{moles of Na₂CrO₄} = \frac{0.2631 \text{ moles}}{2} \approx 0.1316 \text{ moles} \][/tex]

4. Calculate the Mass of Sodium Chromate Needed:
- Use the moles of Na₂CrO₄ and its molar mass to find the mass needed:
[tex]\[ \text{mass of Na₂CrO₄} = \text{moles of Na₂CrO₄} \times \text{molar mass of Na₂CrO₄} \][/tex]
[tex]\[ \text{mass of Na₂CrO₄} = 0.1316 \text{ moles} \times 161.97 \text{ g/mol} \approx 21.31 \text{ grams} \][/tex]

Therefore, to react completely with 44.7 grams of silver nitrate (AgNO₃), you would need approximately 21.31 grams of sodium chromate (Na₂CrO₄).