Answer:
See explanation below
Step-by-step explanation:
You are missing certain data. I found one, in the attached picture. All you have to do is replace your data in this procedure to get an accurate answer.
According to the picture attached, we have 2.4 g of HBr and 1.9 g of NaOH. This mix produces 0.411 g of water. To get the %yield of water, we first need to see how many theorical grams of water are formed. With this we can calculate the %yield.
The overall reaction is:
HBr + NaOH --------> NaBr + H₂O
We have a mole ratio of 1:1 so, let's see which is the limiting reactant between the acid and the base, using the reported molar mass for each (MM HBr = 80.9119 g/mol; MM NaOH = 39.997 g/mol)
moles HBr = 2.4 / 80.9119 = 0.02966 moles
moles NaOH = 1.9 / 39.997 = 0.0475 moles
So, we can clearly see that the moles of NaOH are in excess, so the HBr is the limiting reactant.
As we have a mole ratio of 1:1 with each compound here, and that the HBr is the limiting reactant we can say that:
moles HBr = moles H₂O = 0.02966 moles of water
Now, using the molar mass of water, let's calculate the theorical yield of water: (MM water = 18.01528 g/mol
m H₂O = 0.02966 * 18.01528 = 0.534 g
We have the theorical yield, let's calculate the % yield:
% = 0.411 / 0.534 * 100
% = 76.92%