Question: Solid silver is added to a solution with these initialconcentrations:
ID: 687025 • Letter: Q
Question
Question:
Solid silver is added to a solution with these initialconcentrations:
[Ag]+ = 0.200M
[Fe]2+ = 0.100M
[Fe]3+ = 0.300M
The following revesible reaction occurs:
Ag+(aq) + Fe2+(aq) <=====> Ag(s) + Fe3+(aq) Keq = 2.98
What are the ion concentrations when equilibrium isestablished?
(Hint – use Q, ICE, Quad)
My start to the solution:
Balanced equation: Ag+(aq) + Fe2+(aq) <=====> Ag(s) + Fe3+(aq)
Equilibrium expression: k = 2.98 = ([Ag][Fe3+] ) / ( [Ag+][Fe2+] )
Initial Concentrations: [Ag]+ = 0.200M
[Fe]2+ = 0.100M
[Fe]3+ = 0.300M
[Not sure how to calculate Q and following ofthis problem, any help would be great!!!]