paraperiodic acid is weak acid with the formula H5IO6, and Ka=2.8x10^-2. For all

Question

paraperiodic acid is weak acid with the formula H5IO6, and Ka=2.8x10^-2. For all of the parts of this question it is acceptable to simplify the math by assuming the [conc.] -x=[conc.] or [conc.] +x=[conc.]. A.) Although paraperiodic acid is a polyprotic acid, only loss of one proton is significant. Write a reaction for the reaction of paraperiodic acid in water, assuming that it only gives up one H+ ion. B.) Calculate the pH of a solution that is initially 2.8 M in paraperiodic acid. C.) Calculate the pH of a solution that is 1.00 M in paraperiodic acid AND 0.958 M in sodium paraperiodate (NaH4IO6). D.) Calculate (or determine from other answers) the pH of a buffer containing 1.00 M paraperiodic acid and 0.956 M sodium paraperiodate (NaH4IO6).

Explanation / Answer

1. H5IO6 +H2O ---> H3O+ + H4IO6-

a2.8

2. Calculate the pH of a solution that is initially 2.8 M in paraperiodic acid

ka = [H4IO6-] [H3O+] / [ H5IO6]

at equilibrium

H5IO6 +H2O ---> H3O+  + H4IO6-

2.8 -x x x

ka = [x] [x] / [2.8-x]

2.8x10^-2 = x2 / 2.8-x

2.8-x = 2.8

so 2.8x10^-2 = x2 / 2.8

x2 = 0.0784

x = 0.28

so conc [H+] = 0.28

Therefore pH = -log 2.8 = 0.55

3.

Calculate the pH of a solution that is 1.00 M in paraperiodic acid AND 0.958 M in sodium paraperiodate (NaH4IO6)

pH = pKa + log [salt / acid]

pH = 1.55 + log [0.958 / 1]

pH = 1.55 -0.0186 = 1.531

4. the above solution is a buffer so the ph of buffer is 1.531

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