How much HOCl (Ka = 2.5x10-8) (HOCl <=> H+ + OCl- must be added to pure water to make a solution of pH 4.3?
Let the concentration of HOCl be c
use:
pH = -log [H+]
4.3 = -log [H+]
[H+] = 5.012*10^-5 M
HOCl dissociates as:
HOCl -----> H+ + OCl-
c 0 0
c-x x x
Ka = [H+][OCl-]/[HOCl]
Ka = x*x/(c-x)
2.5*10^-8 = 5.012*10^-5*5.012*10^-5/(c-5.012*10^-5)
c-5.012*10^-5 = 0.1005
c=0.100 M
Answer: 0.100 M
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1.) 1.0 L of a buffer solution was made with 0.15M in HOCl
(Ka = 3.5 ×
10-8) and 0.25M NaOCl. If 10.0 mL of 5.0M HCl are added
into the solution, what would be the pH?
a. 7.23
b. 6.15
c. 6.98
d. 7.46
e. 7.93
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