subject
Chemistry, 17.03.2020 04:26 JocelynC7237

A sample of an ionic compound NaA, where A- is the anion of a
weak acid, was dissolved in enough water to make 100.0 mL of
solution and was then titrated with 0.100 M HCl. After 500.0 mL
of HCl was added, the pH was measured and found to be 5.00.
The experimenter found that 1.00 L of 0.100 M HCl was required
to reach the stoichiometric point of the titration.
a. What is the Kb value for A?
b. Calculate the pH of the solution at the stoichiometric point
of the titration.

ansver
Answers: 3

Another question on Chemistry

question
Chemistry, 22.06.2019 02:50
Consider the equilibrium system: 2icl(s) ⇄ i2(s) + cl2(g) which of the following changes will increase the total amount of of cl2 that can be produced? all of the listed answers are correct decreasing the volume of the container removing the cl2 as it is formed adding more icl(s) removing some of the i2(s)
Answers: 1
question
Chemistry, 22.06.2019 05:30
What is the mass defect of a mole of nuclei with 1.8 x 10^15 j/mol binding energy?
Answers: 1
question
Chemistry, 22.06.2019 05:50
What happens when the temperature of a solution increases?
Answers: 2
question
Chemistry, 22.06.2019 06:30
Over the last 90 years, scientists have added to the body of evidence supporting the big bang theory. what is the latest piece of evidence discovered in 2014?
Answers: 1
You know the right answer?
A sample of an ionic compound NaA, where A- is the anion of a
weak acid, was dissolved in enou...
Questions
question
Computers and Technology, 25.02.2022 21:30
question
Advanced Placement (AP), 25.02.2022 21:30
question
Mathematics, 25.02.2022 21:30
question
Mathematics, 25.02.2022 21:30