An aqueous solution of NaHSO3 is-
1. Acidic
2. Slightly alkaline
3. Alkaline
4. Slightly Acidic
The solubility product constant (Ksp) of salts of types MX, MX2 and M3X at temperature T are 4.0 X 10-8, 3.2 X 10-14 and 2.7 X 10-15 respectively. Solubilities(mol dm-3) of the salts at temperature T are the order:
1. MX > MX2 > M3X
2. M3X > MX2 > MX
3. MX >M3X > MX2
4. M3X >MX > MX2
Ostwald dilution law for weak electrolyte HA can be given as
Of the following change which will shift the reaction towards the product:-
I2 (g) 2I(g) (298K) = +150KJ
(1) increase in concentration of I
(2) decrease in concentration of I2
(3) increase in temperature
4) increase in total pressure
In the reaction, N2O4(g) 2NO2(g), is that part of N2O4 which dissociates. The number of moles at equilibrium will be:
1.
2.
3.
4.
In which solution, AgCl has minimum solubility ?
1. 0.05 M AgNO3
2. 0.01 M NaCl
3. Pure Water
4. 0.01 M NH4OH
50 ml of HCl (pH=1) is mixed with another 100 ml of HCl (pH=2) then pH of resulting solution will be approximately
1. 1.2
2. 1.4
3. 1.6
4. 1.8
In a nitrating mixture (HNO3 + H2SO4), HNO3 acts as
1. Acid
2. Base
3. Acid as well as Base
4. Neither acid nor base
When a solution of acetic acid was titrated with NaOH, the pH of the solution when half of the acid, neutralised was 4.2. Dissociation constant of the acid is
1. 6.31 × 10-5
2. 3.2 × 10-5
3. 8.7 × 10-8
4. 6.42 × 10-4
The strongest Lewis acid among the following is:
1. BBr3
2. BCl3
3. BF3
4. All are same