QUESTION IMAGE
Question
question 9
what is the molar mass of aluminum sulfate?
123.0 g/mol
342.2 g/mol
306.2 g/mol
315.2 g/mol
278.0 g/mol
🆕 New Concept Discovered: Molar Mass of Compounds
Finding the total mass of a chemical formula
Step 1: Determine the chemical formula
Aluminum forms a \( \text{Al}^{3+} \) cation, and sulfate is a polyatomic anion with the formula \( \text{SO}_4^{2-} \).
To balance the charges to make a neutral compound, we need two aluminum ions for every three sulfate ions:
Step 2: List the atomic masses of each element
Using the periodic table, we find the average atomic mass for each element:
- Aluminum (\( \text{Al} \)): \( 26.98 \text{ g/mol} \)
- Sulfur (\( \text{S} \multi-line \)): \( 32.06 \text{ g/mol} \)
- Oxygen (\( \text{O} \)): \( 16.00 \text{ g/mol} \)
Step 3: Calculate the total mass
Multiply the atomic mass of each element by the number of times it appears in the formula \( \text{Al}_2(\text{SO}_4)_3 \):
- Aluminum (\( \text{Al} \)):
- Sulfur (\( \text{S} \)):
- Oxygen (\( \text{O} \)):
Sum these values to find the total molar mass:
This rounds to \( 342.2 \text{ g/mol} \).
Snap & solve any problem in the app
Get step-by-step solutions on Sovi AI
Photo-based solutions with guided steps
Explore more problems and detailed explanations
\( 342.2 \text{ g/mol} \)