Answer:
20.5 g of bromine chloride are produced in the reaction
Explanation:
In the reaction we see that 1 mol of bromine react to 1 mol of chlorine to produce 2 moles of bromine chloride
Equation: Br₂(g) + Cl₂(g) → 2BrCl(g)
As we assumed the chlorine as the excess, we convert the mass of bromines to moles → 14.21 g . 1mol / 159.8 g = 0.0889 moles
In the stoichiometry 1 mol of bromine produces 2 moles of chloride.
Therefore, 0.0889 moles of Br₂ will produce (0.0889 . 2) /1 = 0.178 moles of chloride. Let's convert the moles to mass, to get the answer:
0.178 moles BrCl . 115.35g /1mol = 20.5 g
Answer:
20.52 grams of BrCl will be produced
Explanation:
Step 1: Data given
Mass of Br2 = 14.21 grams
Cl2 is in excess
Molar mass of Br2 = 159.81 g/mol
Molar mass BrCl = 115.36 g/mol
Step 2: The balanced equation
Br2(g) + Cl2(g) → 2BrCl(g)
Step 3: Calculate moles Br2
Moles Br2 = mass Br2 / molar Br2
Moles Br2 = 14.21 grams / 159.81 g/mol
Moles Br2 =0.08892 moles
Step 4: Calculate moles BrCl
For 1 mol Br2 we need 1 mol Cl2 to produce 2 moles BrCl
For 0.08892 moles Br2we'll have 2*0.08892 = 0.17784 moles BrCl
Step 5: Calculate mass BrCl
Mass BrCl = moles BrCl * Molar mass BrCl
Mass BrCl = 0.17784 moles * 115.36g/mol
Mass BrCl = 20.52 grams
20.52 grams of BrCl will be produced
