Respuesta :
Answer:
Excess reagent is the ZnS. After the reaction is complete, 1.67 moles of sulfide remain.
Explanation:
This is the reaction to work with:
2ZnS + 3O₂ → 2ZnO + 2SO₂
Limiting reagent is the oxygen. We confirm it by a rule of three
2 moles of sulfide can react to 3 moles of O₂
Therefore 3 moles of ZnS will react to (3 . 3) / 2 = 4.5 moles (we need 4.5 moles of O₂ and we only have 2 moles, that's why the O₂ is the limiting)
Excess reagent is the zinc (II) sulfide
3 moles of oxygen react to 2 moles of ZnS
2 moles of O₂ will react to (2 . 2) / 3 = 1.33 moles of ZnS (it is ok, be cause we have 3 moles, and we need only 1.33)
After the reaction is complete ( 3 - 1.33) = 1.67 moles of sulfide remain.
Answer:
Answer: Zinc(II)sulfide (ZnS) is in excess. there will remain 1.67 moles
Explanation:
Step 1: Data given
Zinc(II)sulfide = ZnS
oxygen = O2
Number of moles ZnS = 3.0 moles
Number of moles O2 = 2.0 moles
Step 2: The balanced equation
2ZnS + 3O2 → 2ZnO + 2SO2
Step 3: Calculate the limiting reactant
For 2 mles zinc(II) sulfide we need 3 moles oxygen to produce 2 moles zinc oxide and 2 moles sulfur dioxide
O2 is the limiting reactant. There willreact 2.0 moles.
ZnS is in excess. There will react 2/3*2.0 = 1.33 moles
There will remain 3.0 - 1.33 = 1.67 moles ZnS
Step 4: Calculate products
For 2 mles zinc(II) sulfide we need 3 moles oxygen to produce 2 moles zinc oxide and 2 moles sulfur dioxide
For 2.0 moles O2 we'll have 1.33 moles ZnO and 1.33 moles SO2
Answer: Zinc(II)sulfide (ZnS) is in excess. there will remain 1.67 moles
