Question
Question: The solubility product of \[Mg{(OH)_2}{\text{ }}\;is{\text{ }}\;5 \times {10^{ - 19}}\] , pH of satu...
The solubility product of Mg(OH)2 is 5×10−19 , pH of saturated solution of
Mg(OH)2 will be:
Solution
The Solubility of the substance is defined as a property of solute to get dissolved in a solvent to form a solution. The solubility of ionic compounds in water varies really to the great extent. Many compounds present in nature are highly soluble which may even absorb moisture from the atmosphere whereas some of them are highly insoluble.
Complete step by step answer:
Let us check out the general equation written in the aqueous medium
aA(s)⇌cC(aq)+dD(aq)
KspLet find out a way for getting
To get the value of the Kspwe take the concentrations of the products formed or their molarities
and get them multiplied with each other along with the product raised to the coefficients present in front of them that can be shown as follows:
Ksp=[C]c[D]d
Kspresults in the maximum extent that a solid that can get dissolved in solution under normal
conditions.
You might be wondering about what are the factors that are responsible for affecting the value of
Ksp ?
Therefore, the factors responsible for affecting the value of the solubility product constant are:
- The common-ion effect where the existence of a common ion lowers down its value.
- The diverse-ion effect where the uncommon ions of the solutes increase its value.
- The existence of ion-pairs.
Now let’s proceed towards the solution
So, our first step would be to write the chemical equation involved in this question which is given as follows
Mg(OH)2⇌Mg2++2OH−
If the molar solubility of the magnesium hydroxide is S, then it can be easily seen from the stoichiometry of the compound that the equation becomes