Hi everyone, new to forums here. I'm having trouble with this question:
At a certain temperature K = 1.10×103 for the reaction:
Fe3+(aq) + SCN-(aq)= FeSCN2+(aq)
2.00×10-2 mol of Fe(NO3)3 is added to 5.90×10-1 L of 3.22×10-1 M KSCN.
Neglecting any volume change and assuming that all species remain in solution--:
Calculate the equilibrium concentration of Fe3+ (in mol/L).
Calculate the equilibrium concentration of SCN- (in mol/L).
Calculate the equilibrium concentration of FeSCN2+ (in mol/L).
I'm having trouble figuring out how to calculate the initial concentrations of Fe3+, SCN- and FeSCN2+.
Thanks for your help.