Solubility of `MX_(2)` type electrolytes is `0.5xx10^(-4)` mol/L, then find out `K_(sp)` of electrolytes.

Solubility if M_(2)S type salt is 3.5xx10^(-6) , then find out its solubility product

Solubility of CaF_(2) is 0.5xx10^(-4)" mol L"^(-1) . The value of K_(sp) for the salt is

The solubility of electrolytes MX_(1),MX_(2) and MX_(3) is 1xx10^(-3) moles per litre. Hence their respective solubility products are :

Assertion : In a pair of two electrolytes one having higher value of K_(SP) is more soluble in water than the other having lower value of K_(sp) . Reason : Solubility of electrolyte depends upon K_(sp) as well as on the nature of electrolyte.

The solubility of Sb_(2)S_(3) in water is 1.0 xx 10^(-5) mol/letre at 298K. What will be its solubility product ?

The solubility of CuS in pure water at 25^(@)C is 3.3 xx 10^(-4)g L^(-1) . Calculate K_(sp) of CuS . The accurate value of K_(sp) of CuS was found to be 8.5 xx 10^(-36) at 25^(@)C .

Resistance of 0.2 M solution of an electrolyte is 50 ohm . The specific conductance of the solution is 1.4 S m^(-1) . The resistance of 0.5 M solution of the same electrolyte is 280 Omega . The molar conductivity of 0.5 M solution of the electrolyte in S m^(2) mol^(-1) id

The solubility of Sb_(2)S_(3) in water is 1.0 xx 10^(-8) mol/litre at 298 K. What will be its solubility product:

The solubility of AgCl at 298 K is 1.3 xx 10 ^(-5) " mol " L^(-1) Calculate the value of K_(sp) at this temperature.

The solubility of a saturated solution of calcium fluoride is 2xx10^(-4) mol/L. Its solubility product is