Respuesta :
Answer:
Limiting reactant is the Na₂B₄O₇
Mass of H₂SO₄ that remains after the reaction: 2.65 g
Mass of water that remains after the reaction: 2.86 g
Explanation:
We analyse the reaction:
Na₂B₄O₇(s) + H₂SO₄(aq) + 5H₂O(l) → 4H₃BO₃(s) + Na₂SO₄(aq)
So we have 5.17g of borax, 5.17 g of sulfuric acid and 5.17 g of water.
We convert the mass to moles:
5.17g / 201.24 g/mol = 0.0257 moles of borax
5.17 g / 98 g/mol =0.0527 moles of H₂SO₄
5.17 g / 18 g/mol = 0.287 moles of H₂O
Ratio between borax and sulfuric acid is 1:1. For 0.0257 moles of borax I need the same amount of acid, so the acid is in excess. For 0.0527 moles of acid I need the same amount of borax, but I do not have enough moles, so the borax is the limiting reactant.
1 mol of borax need 5 moles of water to react
Then, 0.0257 moles of borax will react with (0.0257 . 5) /1 =0.128 moles of water. Water is also an excess because I have enough moles to use.
5 moles of water react with 1 mol of borax
Therefore 0.287 moles of water will react with (0.287 . 1) /5 = 0.0574-
There is no enough borax to react. It's ok that Na₂B₄O₇ is the limiting reactant so:
1 mol of borax react with 1 mol of acid and 5 moles of water
Then, 0.0257 moles of borax will react with 0.0257 moles of acid and 0.128 moles of H₂O
Moles of sulfuric acid that remains: 0.0527 - 0.0257 = 0.027 moles
Moles of water that remains: 0.287 - 0.128 = 0.159 moles
Mass of H₂SO₄: 0.027 mol . 98g / 1mol = 2.65 g
Mass of water: 0.159 mol . 18 g / 1 mol = 2.86 g
Answer:
Na2B4O7 is the limiting reactant. There will remain 2.65 grams of H2SO4 and 2.86 grams of H2O
Explanation:
Step 1: Data given
Mass of Na2B4O7 = 5.17 grams
Mass H2SO4 = 5.17 grams
Mass H2O = 5.17 grams
Molar mass of Na2B4O7 = 201.22 g/mol
Molar mass H2SO4 = 98.08 g/mol
Molar mass H2O = 18.02 g/mol
Step 2: The balanced equation
Na2B4O7(s) + H2SO4(aq) + 5H2O(l) → 4H3BO3(s) + Na2SO4(aq)
Step 3: Calculate moles
Moles = mass / molar mass
Moles Na2B4O7 = 5.17 grams / 201.22 g/mol
Moles Na2B4O7 = 0.0257 moles
Moles H2SO4 = 5.17 grams / 98.08 g/mol
Moles H2SO4 = 0.0527
Moles H2O = 5.17 grams / 18.02 g/mol
Moles H2O = 0.287 moles
Step 3: Calculate the limiting reactant
For 1 mol Na2B4O7 we need 1 mol H2SO4 and 5 moles H2O to produce 4 moles H3BO3 and 1 mol Na2SO4
Na2B4O7 is the limiting reactant. It will completely be consumed (0.0257 moles). H2SO4 and H2O are in exces. There will react 0.0257 moles H2SO4 and 5*0.0257 = 0.1285 moles H2O
There will remain 0.0527 - 0.0257 = 0.027 moles H2SO4
There will remain 0.287 - 0.1285 =0.1585 moles H2O
Step 4: Calculate mass of excess reactants
Mass = moles * molar mass
Mass H2SO4 remaining = 0.027 moles * 98.08 g/mol
Mass H2SO4 = 2.65 grams
Mass H2O remaining = 0.1585 moles * 18.02 g/mol
Mass H2O remaining = 2.86 grams
Na2B4O7 is the limiting reactant. There will remain 2.65 grams of H2SO4 and 2.86 grams of H2O
