Q: One mole of NOCl gas is added to a 4.0L container. The NOCl undergoes slight decomposition to form NO gas and Cl2 gas. If the equilibrium constant Kc = 2.0 x 10-10, calculate the concentrations of all the species at equilibrium at this temperature.
2NOCl (g) <----------> 2NO (g) + Cl2 (g)
I have done all my leg work and equations, but I desperately need some help...
Could someone be so kind to walk me through this.
STEP #1
NOCl 2NO Cl2
Initial 0.25 M O O
change -x +x +x
-------------------------------------------------------------------
Equilibrium 0.25 - x 2X X
STEP #2
Kc = [NO]2[Cl2] / [NoCl]2
2.0 x 10-10 = (x)2 (x) / [0.25 - x]2
2.0 x 10-10 = (x)2 (x) / 0.0625 - 0.5 x + x2
2.0 x 10-10(x2 - 0.5x + 0.0625) = (4X2)(x)
2.0 x 10-10x2 - 1.0 x 10-10 x + 1.25 x 10-11 = 4x3
BUT I can't apply the quadradic equation to this because there is X3, x2, x, #...
Can anyone help me with this?
Where have I gone so desperately wrong?