The concentration of ion in a solution containing 0.1 M HCN and 0.2 M NaCN will be:
( for HCN = )
1. 3.1
2.
3.
4.
If the molar concentration of is mol L–1, the concentration of chloride ions will be:
1. | 3.0 x 10-3 | 2. | 6.0 x 10-3 |
3. | 0.3 x 10-3 | 4. | 0.6 x 10-6 |
Given that the ionic product of is 2 × . The solubility of in 0.1 M NaOH is ;
1. 2 × M
2. 1 × M
3. 1 × M
4. 2 × M
Consider the following two reactions :
If are equilibrium constants, the value of will be:
1. | 6.25 × 104 | 2. | 2.5 × 102 |
3. | 4 × 10-3 | 4. | 1.6 × 102 |
On adding NH4CI to an NH4OH solution, the pH of the solution will
1. | Increase | 2. | Decrease |
3. | Remain the same | 4. | Either increase or decrease |
If the pH of an acidic buffer is 5.7 and is 5 then the ratio of will be:
1. | 3 | 2. | 4 |
3. | 5 | 4. | 6 |
The number of ions present in 1 ml of a solution whose pH= 4 , is given as:
( )
1.
2.
3.
4.
The dissociation of solid in a closed container produces a pressure of 4 atm at , then for the reaction will be:
1. | 4 | 2. | 8 |
3. | 16 | 4. | 5 |
The degree of hydrolysis of the salt is independent of the concentration of a solution:
1. NH4CI
2. NH4CN
3. (NH4)2SO4
4. All of the above
for 22% dissociation what would be the value of equilibrium constant?
1. 0.04
2. 0.0198
3. 0.5
4. 1.2527