You have the balanced equation.
Set up an ICE chart, substitute into Kc and solve.
initial:
F = 8.285 M
F2 = 0
change:
F2 = +x
F = -2x
equilibrium:
F = 8.285-2x
F2 = x
If the initial concentration of F(g) is 8.285 mol/L, calculate the % decomposition of F(g) when the reaction comes to equilibrium according to the balanced equation. The value of Kc at 927.0 °C is 370.00. The initial concentration of the reaction products is 0 mol/L.
2F(g) = F2(g)
2 answers
i don't understand..