Final answer:
To find the mass of BaSO4 produced from a precipitation reaction between Ba(NO3)2 and K2SO4, one calculates the moles of K2SO4, then uses a 1:1 stoichiometry and the molar mass of BaSO4 to find the precipitate's mass. In this case, 6.128 g of BaSO4 will be produced.
Step-by-step explanation:
Calculating the Mass of BaSO4 Precipitate
To calculate the mass of BaSO4 produced, we must first calculate the number of moles of K2SO4 present in the solution. As we have a 0.103 M solution, and the volume of the solution is 255 mL, which is 0.255 L, we can find the moles of K2SO4 by multiplying the concentration by the volume in liters:
Moles of K2SO4
= 0.103 mol/L × 0.255 L = 0.026265 mol
Since the reaction between Ba(NO3)2 and K2SO4 yields BaSO4 in a 1:1 stoichiometry, the moles of BaSO4 formed will be the same as the moles of K2SO4 reacted, assuming Ba(NO3)2 is in excess.
Now, we use the molar mass of BaSO4 (233.39 g/mol) to find the mass of BaSO4:
Mass of BaSO4
= Moles of BaSO4 × Molar mass of BaSO4 = 0.026265 mol × 233.39 g/mol =
6.128 g
Therefore, 6.128 g of BaSO4 will be produced when excess Ba(NO3)2 reacts with 255 mL of 0.103 M K2SO4 solution.