Consider a solution consisting of the following two buffer systems: H2CO3
HCO3- + H+ pKa = 6.4
H2PO4-
HPO42- + H+ pKa = 7.2
At pH 6.4, which one of the following is true of the relative amounts of acid and conjugate base present?
A) [H2CO3] > [HCO3-] and [H2PO4-] > [HPO42-]
B) [HCO3-] > [H2CO3] and [HPO42-] > [H2PO4-]
C) [H2CO3] > [HCO3-] and [HPO42-] > [H2PO4-]
D) [H2CO3] = [HCO3-] and [HPO42-] > [H2PO4-]
E) [H2CO3] = [HCO3-] and [H2PO4-] > [HPO42-]
Correct Answer:
Verified
Q2: Which of the following will not produce
Q3: You have solutions of 0.200 M HNO2
Q4: What is the pH of a solution
Q5: Consider a solution of 2.0 M HCN
Q6: How many mmoles of HCl must be
Q9: Calculate the pH of a solution that
Q10: Calculate [H+] in a solution that is
Q11: For 110.0 mL of a buffer that
Q12: Calculate the pH of a solution made
Q18: A student uses 16.60 mL of 0.100
Unlock this Answer For Free Now!
View this answer and more for free by performing one of the following actions
Scan the QR code to install the App and get 2 free unlocks
Unlock quizzes for free by uploading documents