Question

If `"K"_"sp"` of `"Mg(OH)"_2` is more than that of `"MgCO"_3` which gets precipitated first?

It is because of high solubility product of `"Mg(OH)"_2` as compared to that of `"MgCO"_3`, that `"Mg(OH)"_2` is precipated.

Is this statement from my textbook correct?
How a more soluble compound gets precipated easily than a less soluble compound?

Answer 1

`K_"sp"` is an equilibrium quantity....and I think your text book has a typo....

Explanation:

The section of the text tries to explain that BICARBONATES, i.e. salts of `HCO_3^(-)` are generally soluble, yet carbonates, salts of `CO_3^(2-)` are generally insoluble. This is often observed for insoluble sulfates versus soluble bisulfates, salts of `HSO_4^-`.

To look at the data, (and as physical scientists we MUST look at data...)...this site quotes `K_"sp"=5.61xx10^-12` for `Mg(OH)_2`.....solubilities in the range of a few `"ppm"`...

and this site quotes `K_"sp"=10^-7` for `MgCO_3`, i.e. `0.139*g*L^-1`, or `139*"ppm"`..