Answer:
Limiting Reagent = Aluminum
Mass formed = 28.92g (4.s.f.)
Explanation:
Step 1: Write a balanced equation for the reaction
We know that Aluminum hydride is formed from hydrogen and aluminum, so we can put those elements in our equation first:
H2 + Al -> AlH3
*Remember that hydrogen is a diatomic molecule so it is H2.
Now let's balance it! We can see that the Al molecules are balanced but the Hydrogens are not, so we can multiply both molecules by the opposite number:
3H2 + Al -> 2AlH3
Now we have 6 hydrogens on each side, we just add a 2 to balance the aluminum and we have the balanced equation!
3H2 + 2Al -> 2AlH3
Step 2: Convert all values to no. of moles
To do this, we can use the formula:
mass = no. moles x Molar mass
Which we can rearrange to find No. moles = mass/ Molar mass
Hydrogen: 3.00/2.02 = 1.49 moles
Aluminum: 26.00/26.98 = 0.9637 moles
Step 3: Find the Limiting Reagent
Now we choose one (let's use hydrogen) and divide by the co-efficient ratio between the two elements (3H2 for every 2 Al).
1.49 x 2/3 = 0.993 (This is the theoretical amount of Aluminum we need for the amount of hydrogen we have)
Now we compare this number with the actual no. moles of aluminum we have to find the limiting reagent:
0.993 > 0.9637
This means that Aluminum is the limiting reagent. (We are working with 0.9637 moles of Aluminum.)
Step 4: Find amount of product formed
We can use the molar ratio of the balanced equation again to find how much AlH3 is made. The coefficient of Al is the same as the coefficient of AlH3. This means that equal no. if moles are made in the reaction.
This means that 0.9637 moles of Aluminum Hydride is formed in this reaction.
Step 5: Convert back to mass in grams
Now we just need to convert the no. moles back to mass using the same formula:
mass = no. moles x Molar Mass
m = 0.9637 x (26.98 + 3 x 1.01)
m = 0.9637 x 30.01
m = 28.92g (4.s.f.)
Hope this helped!
