Answer:
Mass of Ag₂S which is produced, 2.29 g
Mass of reactant in excess (S₈) which is left unreacted, 1.70g
Step-by-step explanation:
The balanced reaction is this:
16 Ag (s) + S₈ (s) → 8Ag₂S (s)
Molar mass of sulfur: 2g / 256.48 g/m = 0.00779 moles
Molar mass of silver: 2 g / 107.87 g/m = 0.0185 moles
For 16 moles of silver, I need 1 mol of S
For 0.0185 moles of Ag, I will need ( 0.0185 / 16) = 0.00116 moles
If I need 0.00116 moles of S, and I have 0.00779 moles it means, that S is my reactant in excess so the limiting reagent is the Ag.
Let's verify:
1 mol of S are needed to make react 16 moles of Ag
0.00779 moles of S, will need ( 0.00779 .16 ) = 0.124 moles of Ag
(I only have 0.0185 moles of Ag)
So the Ag is the limiting reactant, now we can calculate the mass of formed product:
16 moles of Ag, produce 8 moles of Ag₂S
0.0185 moles of Ag will produce (0.0185 .8)/ 16 = 0.00925 moles of Ag₂S
To find out the mass, let's multiply moles . molar mass
0.00925 m . 247.8 g/m = 2.29 g
Mass of the excess, which is left unreacted:
0.00779 m - 0.00116m = 0.00667 moles
0.00667m . 256.48 g/m = 1.70 g