Concept explainers
Interpretation:
The pH of a 0.045-M aqueous solution of a weak base
Concept Information:
Strong base and weak base:
Strong base dissociates into its constituent ions fully. It produces more of hydroxide ions while dissolved in water. Weak bases partially dissociates into its constituent ions.
According to Bronsted-Lowry, strong base is a good proton acceptor whereas weak base is a poor proton acceptor
Since, the ionization of a weak base is incomplete, it is treated in the same way as the ionization of a weak acid.
The ionization of a weak base
The equilibrium expression for the ionization of weak base
Where,
The
Relationship between
The relationship between the hydronium ion concentration and the hydroxide ion concentration is given by the equation,
As
To Calculate: The pH of the given weak base
Want to see the full answer?
Check out a sample textbook solutionChapter 16 Solutions
Chemistry: Atoms First
- What is the pH of 1.000 L of a solution of 100.0 g of glutamic acid (C5H9NO4, a diprotic acid; K1 = 8.5 × 10−5, K2 = 3.39 × 10−10) to which has been added 20.0 g of NaOH during the preparation of monosodium glutamate, the flavoring agent? What is the pH when exactly 1 mol of NaOH per mole of acid has been added?arrow_forwardThe ionization constant of lactic acid, CH3CH(OH)CO2H, an acid found in the blood after strenuous exercise, is 1.36 × 10−4. If 20.0 g of lactic acid is used to make a solution with a volume of 1.00 L, what is the concentration of hydronium ion in the solution?arrow_forwardWhat is the pH of the resulting solution when 0.456 g of sodium acetate are dissolved into 1 L of water at 25 °C? Ka for acetic acid is 1.8×10^-5.arrow_forward
- HCN is a weak acid (K₁ = 6.20 x 10-10), so the salt, KCN, acts as a weak base. What is the pH of a solution that is 0.0585 M in KCN at 25 °C? pH =arrow_forwardWhat is the pH of a solution when 2. 75 g of ammonium chloride, NH4CI, is used to make 100 cm3 of aqueous solution?arrow_forwardThe pH of dissolving 1.48 g of propanoic acid (CH3CH2COOH, Ka 1.3X105) in 200 mL H20 is 4.82 O3.71 O 2.94 O 1.22 O 5.25arrow_forward
- When 0.412 g of a weak base with Kb = 3.10 ×10-5 the base is dissolved in 1.00 L of solution, it has a pH of 10.32, What is the Molar Mass of the base?arrow_forwardThe ka of an unknown acid, HYO₂, is determined to be 5 x 10⁻² empirically. What is the pH of a 0.1 M solution of HYO₂?arrow_forwardWhat is the pH of 0.025 M aqueous acetate ion? (Kb of CH3CO2– = 5.6 ×× 10–10)arrow_forward
- What is the pH of a solution that is 0.26 M CH3NH2 (methylamine) and 0.38 M CH3NH3Cl (methylammonium chloride)? (Assume Kw is 1.0 ✕ 10−14.)arrow_forwardWhat is the pH of a solution made from combining 2.49 mol (CH3)2NH2Cl and 5.18 mol (CH3)2NH in a 8.97 L aqueous solution? The Kb of the base is 5.9 x10-4.arrow_forwardNH3 is a weak base (?b=1.8×10−5Kb=1.8×10−5) and so the salt NH4Cl acts as a weak acid. What is the pH of a solution that is 0.0180.018 M in NH4Cl at 25 °C?arrow_forward
- Chemistry: Principles and ReactionsChemistryISBN:9781305079373Author:William L. Masterton, Cecile N. HurleyPublisher:Cengage Learning