Answer:
337 g of Solid PbI₂
Solution:
When Potassium Iodide (KI) is reacted with Lead (II) Nitrate it produces a yellow precipitates of Lead (II) Iodide (PbI₂) as expressed in following balanced equation.
Pb(NO₃)₂ + 2 KI → K₂(NO₃)₂ + PbI₂
According to this equation,
332 g (2 mol) of KI reacts to produce = 461 g (1 mol) of solid PbI₂
So,
242.36 g of KI will produce = X g of solid PbI₂
Solving for X,
X = (242.36 g × 461 g) ÷ 332 g
X = 336.53 g of Solid PbI₂
Rounded to three significant figures,
X = 337 g of Solid PbI₂
