Solubility of the compounds of group IIA in correct order is
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a
Be(OH)2 < Mg(OH)2 < Ca(OH) < Sr(OH)2 < Ba(OH)2
b
BeSO4 < MgSO4 < CaSO4 < SrSO4 < BaSO4
c
BeCO3 < MgCO3 < CaCO3 < SrCO3 < BaCO3
d
All of the above are correct variations
answer is A.
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Detailed Solution
Going down the group, size of the cation increases. Since, the lattice energy decreases much more than the hydration energy with increasing size solubility of hydroxide increases (when size of cation and anion are of comparable size).(2) and (3) if the anion is large (as CO32−,SO42−) compared to cation, the lattice energy will remain almost constant. Since, hydration energy decreases fown a group, solubility will decrease hence (2) and (3) are incorrect.