If the solubility product of silver chromate is 2 x 10-12 at 25°C, what is the solubility in mole/liter of silver chromate?

Question

asked Apr 4, 2020 147k views

1 Answer

Amitai Fensterheim · Answer 1 · 2020-04-10T15:36:40+0000

Answer:

Solubility of silver chromate =
$0.7937*10^(-4)\;mol/L$

Step-by-step explanation:

Given,

$Ag_2CrO_4\leftrightharpoons2Ag^(+)\;+\;CrO4^(2-)$

Solubility product (Ksp) = 2 x 10-12

at equilibrium,
[Ag^(+)] = 2x,
[CrO4^(2-)] = x

$Ksp=[Ag^(+)]^(2)[CrO_4^(2-)]\\2*10^(-12)=(2x)^(2)(x)\\2*10^(-12)=(4x)^(3)\\(x)^(3) = (2*10^(-12))/(4)\\\\\sqrt[3]{5*10^(-13)}$

$x=\sqrt[3]{0.5*10^(-12)} =0.7937*10^(-4)\;mol/L$