gammagirl Posted March 30, 2018 Posted March 30, 2018 (edited) Determine the mass in grams of lead (II) iodide that will dissolve in 500.0 mL of a solution containing 1.03 grams of lead (II) nitrate. Ksp of lead (II) iodide is 1.4 x 10-8. 1.03 g x mol = .00622 mol ------ ------ ------------- 0.5 L 331.2 L PbI2 (s) ==> PbI2(aq) ==>Pb2+ + 2I- .00622 2x^2 (.00622)(2x)^2=1.4 x 10^-8 x = 7.5 x 10^-4 M 7.5 x 10^-4 m/L x .5 L x 461.01 g/mole = .173 g Edited March 30, 2018 by gammagirl correction
hypervalent_iodine Posted March 30, 2018 Posted March 30, 2018 Why is [Pb2+] defined as 0.00622 M at equilibrium? Are you familiar with how to use ICE tables?
gammagirl Posted March 30, 2018 Author Posted March 30, 2018 yes should if be (x +.00622)(4x^2)? Idk how the solution to that math.
hypervalent_iodine Posted March 30, 2018 Posted March 30, 2018 22 minutes ago, gammagirl said: yes should if be (x +.00622)(4x^2)? Idk how the solution to that math. But it isn’t that. How would it make sense to have a higher [Pb2+] than the initial concentration of PbI2? Go through the ICE table again.
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