Interpretation:
From the given percent dissociation, the concentration of the weak acid is to be determined.
Concept introduction:
pH is the measure of the acidity of a solution and it depends on the concentration of hydronium ions and the temperature of the solution.
The formula to calculate the pH of the solution from the concentration of hydronium ions is:
The ionization of the weak acid takes place as:
Percent ionization is the percentage of acid that gets dissociated upon addition to water. It depends on the hydronium ion concentration.
Here,
Want to see the full answer?
Check out a sample textbook solutionChapter 16 Solutions
Chemistry
- Calculate the percent lonization of hydrogen peroxide (H₂O₂) in solutions of each of the following concentrations (K,-2.4-12.) (a) 0.267 M (b) 0.382 M (C) 0.622 Harrow_forwardWhat is the pH of a 0.25 M solution of H3PO4? Ka = 7.2 x 10-³ (A) 0.25 (B) 7.2 x 10-3 (C) 0.0018 (D) 0.042 (E) 1.37arrow_forwardProblem Solving Chemistry at Work Save Fern Hill Lake! Fern Hill Lake has a low pH, presumably the result of acid rain. The lake is about 3 kilometers long, 2.5 kilometers across, and has an average depth of 8 meters. Its pH is 4.1. Someone in your community proposes that calcium hydroxide be added to the lake to increase the pH to 6.5, a more favourable level. *About how many grams of calcium hydroxide should be added to the lake to accomplish this task? *What approximations must you make in your calculations? Hoe reasonable do you think your approximations are? *Is adding calcium hydroxide a long-term solution to the problem of acid rain?arrow_forward
- tion will be acidic. Simila Practice Exercise Predict whether the following solutions will be acidic, basic, or nearly neutral: (a) LiClO,, (b) Na,PO4, (c) Bi(NO3)3, (d) NH,CN. Finally we note that some anions can act either as an acid or as a base. For example, the bicarbonate ion (HCO;) can ionize or undergo hydrolvsis nn follarrow_forwardA lone pair of electrons can be used to act as a/an: (Select ALL that apply) a) Hydrogen Bond Donor b) Hydrogen Bond Acceptor c) Acid d) Base 3arrow_forwardPRACTICE EXAMPLE A: Explain which is the stronger acid, HNO3 or HClO4; CH₂FCOOH or CH₂BrCOOH. [Hint: Draw plausible Lewis structures.] PRACTICE EXAMPLE B: Explain which is the stronger acid, H3PO4 or H₂SO3; CC13CH₂COOH or CCl₂FCH2 COOH. [Hint: Draw plausible Lewis structures.]arrow_forward
- 16. The pH of a weak monoprotic acid (HA) is 3.75. If the ionization constant for this acid is 8.9 x 10–6, what is the concentration of the weak acid? (a) 0.890 M (d) 0.00355 M (b) 5.05 M (e) 0.00712 M (c) 0.0500 Marrow_forwardPlease answer allarrow_forwardProblem 3. A solution is prepared by dissolving 12.02 g of LiClO to make one liter of solution (Ka of HClO = 2.57×10-7). (a) Write the equilibrium equation (do not show the spectator ion) (b) Determine the pH of the solution (validate any assumptions you make)arrow_forward
- Chemistry: Matter and ChangeChemistryISBN:9780078746376Author:Dinah Zike, Laurel Dingrando, Nicholas Hainen, Cheryl WistromPublisher:Glencoe/McGraw-Hill School Pub Co