Consider the following balanced equation:
2AlCl3 + 3Na2S
->
Al2S3 + 6NaCl
If 0.675 moles of AlCl3 reacts, how many grams of Al2S3 will be formed?
Use the following molar masses as needed:
Compound molar mass
AIC13
133.341 g/mol
Na2S
78.048 g/mol
Al2S3
150.162 g/mol
Naci
58.443 g/mol

In every problem involving stoichiometry, we must note the balanced reaction equation. The balanced reaction equation serves as a guide in solving the problem. Every step must be based on a correct representation of the reaction equation.

From the balanced reaction equation;

2 moles of AlCl3 yields 1 moles of Al2S3

0.675 moles of AlCl3 will yield 0.675 × 1 / 2= 0.3375 moles of Al2S3

Mass of Al2S3 produced= number of moles of Al2S3 × molar mass of Al2S3

Molar mass of Al2S3= 150.162 g/mol

Mass of Al2S3= 0.3375 moles of Al2S3 × 150.162 g/mol

Mass of Al2S3= 50.68 g

Consider the following balanced equation: 2AlCl3 + 3Na2S -> Al2S3 + 6NaCl If 0.675 moles of AlCl3 reacts, how many grams of Al2S3 will be formed? Use the following molar masses as needed: Compound molar mass AIC13 133.341 g/mol Na2S 78.048 g/mol Al2S3 150.162 g/mol Naci 58.443 g/mol

Answer :

Other Questions

Consider the following balanced equation:
2AlCl3 + 3Na2S
->
Al2S3 + 6NaCl
If 0.675 moles of AlCl3 reacts, how many grams of Al2S3 will be formed?
Use the following molar masses as needed:
Compound molar mass
AIC13
133.341 g/mol
Na2S
78.048 g/mol
Al2S3
150.162 g/mol
Naci
58.443 g/mol