How would you explain the following observations ? (i) BeO is almost insoluble but `BeSO_(4)` is soluble in water (ii) BaO is soluble but `BaSO_(4)` is insoluble in water (iii) LiI is more soluble than KI in ethanol

How would you explain the following observations ? (i) BeO is almost i

1.	How would you explain the following observations ? (i) BeO is almost insoluble but `BeSO_(4)` is soluble in water (ii) BaO is soluble but `BaSO_(4)` is insoluble in water (iii) LiI is more soluble than KI in ethanol
Answer» (i) BeO is almost insoluble in water and `BeSO_(4)` is soluble in water `Be^(2+)` is a small cation with a high polarising power and `O^(2-)` is a small anion The size compatibility of `Be^(2+)` and `O^(2-)` is high. Therefore, the lattice energy released during their formation is also very high. When BeO is dissolved in water, the hydration enegy of its ions is not sufficient to overcome the high lattice energy. Therefore BeO is insoluble in water. On the other hand `SO_(4)^(2-)` ion is a large anion. Hence, `Be^(2+)` can easily polarise `SO_(4)^(2-)` ions, making `BeSO_(4)` unstable thus, the lattice energy at `BeSO_(4)` is not very high and so it is soluble in water (ii) BaO is soluble in water, but `BaSO_(4)` is not `Ba^(2+)` is a large cation and `O^(2-)` is a small anion. The size compatibility of `Ba^(2+)` and `O^(2-)` is not high. As a result, BaO is unstable. The lattice energy released during its formation is also not very large. It can easily be overcome by the hydration energy of the ions. Therefore, BaO is soluble in water. In `BaSO_(4), Ba^(2+)` and `SO_(4)^(2-)` are both large sized the lattice energy released is high Hence, it is not soluble in water (iii) LiI is more soluble than KI in ethanol. As a result of its small size, the lithium ion has a higher polarising power than the potassium ion. It polarises the electron cloud of the iodide ion to a much greater extent than the potassium ion. This causes a greater covalent character in LiI than in KI. Hence, LiI is more soluble in ethanol.

Discussion

No Comment Found

Related InterviewSolutions

In electrolysis of `NaCl` when `Pt` electrode is taken `H_(2)` is liberated at cathode while `Hg` cathode it forms sodium amalgam becauseA. Hg is more inert than PtB. more voltage is required to reduce `H^(+)` at Hg than at PtC. Na is dissolved in Hg while it does not dissove in PtD. concentration of `H^(+)` ions is larger when Pt electrode is taken
Which among the following is kinetically inert towards water?A. NaB. BeC. CaD. K
Which ions are produced when anhydrous KF is mixed with conc. HF?A. `K^(+),H^(+),F^(-)`B. `{KF^(+)(HF^(-))}`C. `KH^(+),F^(-)`D. `K^(+),HF_(2)^(-)`
Fill up the blanks with appropriate choice. Lithium and magnesium react slowly with water. their hydroxides are_____soluble in water. Carbonates of Li and Mg____easily on heating. Both LiCl and `MgCl_(2)` are_____in ethanol and are_______.they crystallise from their aqueous solutions as_____.A. More, do not decompose, soluble, hygroscopic, hydratesB. less, decompose, soluble, deliquescent, hydratesC. freely, sublime, insoluble, deliquescent, anhydrousD. freely, docompose, soluble, hygroscopic, crystals
The oxidation states of the most electronegative elements in the products of the reaction between `BaO_(2)` and `H_(2)SO_(4)` areA. 0 and -1B. `-1` and -2C. `-2` and 0D. `-2` and +1
An excess of `KO_(2)` is placed in a closed container of `CO_(2)`(g). After reaction is completed. Will the gas pressure be same, greater or less than initial value. Example.
Write balanced equations for reactions between a. `Na_(2)O_(2)` and water b. `KO_(2)` and water c. `Na_(2)O` and `CO_(2)`
Among `KO_(2),ALO_(2)^(Θ)`,`BaO_(2)` and `NO_(2)^(+)`,unpaired electrons is present in .A. `NO_(2)^(+) and BaO_(2)`B. `KO_(2) and AlO_(2)^(-)`C. `KO_(2)` onlyD. `BaO_(2)` only
The stability off `K_(2)O,K_(2)O_(2) and KO_(2)` is in order `K_(2)O lt K_(2)O_(2) lt KO_(2)`. This increasing stability as the size of metal ion increases is due to stabilisation ofA. larger cation by smaller anions through lattice energy effectsB. larger cation by larger anions through lattice energy effectsC. smaller cations by smaller anions through melting pointD. smaller cations by larger anions through melting point.
A metal `M` readily forms its sulphate `MSO_(4)` which is water soluble. It forms its oxide `MO` which becomes inert on heating. It forms its insoluble hydroxide `M(OH)_(2)` which is soluble in `NaOH` solution. Then `M` isA. `Be`B. BaC. CaD. Mg

How would you explain the following observations ? (i) BeO is almost insoluble but `BeSO_(4)` is soluble in water (ii) BaO is soluble but `BaSO_(4)` is insoluble in water (iii) LiI is more soluble than KI in ethanol

Discussion

No Comment Found

Related InterviewSolutions

Reply to Comment