The pH of a buffer solution containing equal molal concentration of a weak base and its chloride (Kb for weak base = 2 x 10-5) is
5
9
4.7
9.3
Consider the following equilibrium in a closed container
At a fixed temperature, the volume of the reaction container is halved. For this change which of the following statement holds true regarding the equilibrium constant (Kp) and degree of dissociation ()?
Neither KP nor changes
Both Kp and changes
Kp changes but does not
Kp does not change but changes
D.
Kp does not change but changes
Use Le-Chatelier principle
Number of moles are increasing in forward reaction.
Such reactions are favoured at low pressure according to Le-Chatelier principle.
Given, Volume is halved.
therefore,
Pressure is doubled
Equilibrium will shift backward and degree of dissociation will decreases.
KP is constant at constant temperature.
The equilibrium constant of a reaction is 300. If the volume of reaction flask is tripled, the equilibrium constant is
300
600
900
100
The pH of a 10-8 molar solution of HCl in water is
8
between 7 and 8
between 6 and 7
None of these
The solubility of AgCl is 1 x 10-5 mol/L. Its solubility in 0.1 molar sodium chloride solution is
When ammonium chloride is added to ammonia solution, the pH of the resulting solution will be
increased
seven
decreased
unchanged
Calculate pH of a buffer prepared by adding 10 mL of 0.10 M acetic acid to 20 mL of 0.1 M sodium acetate [ pKa (CH3COOH) = 4.74 ]
3.00
4.44
4.74
5.04