At `25^(@)`C, `K_(sp)` for `PbBr_(2)` is equal to `8xx10^(-5)`. If the salt is `80%` dissociated, What is the solubility of `PbBr_(2)` in mol//litre?

At 25^oC , K_(sp) for AB_2 salt is equal to 8xx10^-6 . If the salt is 70% dissociated, then the solubility of AB_2 in mol/litre is

K_(sp) of PbBr_(2) is 8 xx 10^(-5) . If the salt is 80% dissociated in solution, calculat the solubility of salt in gL^(-1) .

K_(sp) of PbBr_(2) is 8 xx 10^(-5) . If the salt is 80% dissociated in solution, calculate the solubility of salt in gL^(-1) .

K_("sp") of PbBr_(2) (Molar mass =367 ) is 3.2xx10^(-5) . If the salt is 80% dissociated in solution, caculate the solubility of salt in g per litre .

K_("sp") of PbBr_(2) (Molar mass =367 ) is 3.2xx10^(-5) . If the salt is 80% dissociated in solution, caculate the solubility of salt in g per litre .

The solubility product of lead bromide is 8xx10^(-5) at 298 K. If the salt is 80% dissociated in saturated solution, calculate the solubility of the salt (in gram/litre)

The solubility product of lead bromide is 8 xx 10^(-5) . If the salt is 80% dissociated in saturated solution, find the solubility of the salt :-

K_(sp) for Cr(OH)_(2) is 2.7 xx 10^(-13) . What is its solubility in moles // litre ?