Multiple Choice
A titration of 100.0 mL of 1.00 M malonic acid (H2A) was done with 1.00 M NaOH. For malonic acid, Ka1 = 1.49 10-2, Ka2 = 2.03 10-6.
-Calculate the [H+] after 50.00 mL of 1.00 M NaOH has been added.
A) 2.00 10-6 M
B) 1.41 10-10 M
C) 1.49 10-2 M
D) 3.87 10-2 M
E) none of these
Correct Answer:

Verified
Correct Answer:
Verified
Q102: The concentration of Ag<sup>+</sup> in a saturated
Q103: Which of the following salts shows the
Q104: What is the molar solubility of AgCl
Q105: Which titration curve would result from the
Q106: 44.4 mL of a 1.42 M NaOH
Q108: You are given 5.00 mL of an
Q109: A 50.00-mL sample of 0.100 M Ca(NO<sub>3</sub>)<sub>2</sub>
Q110: Which of the following titration curves schematically
Q111: The observed solubility of the salt MX
Q112: A solution is formed by mixing 50.0