Advertisements
Advertisements
प्रश्न
The percentage of pyridine (C5H5N) that forms pyridinium ion (C5H5NH) in a 0.10 M aqueous pyridine solution (Kb for C5H5N = 1.7 × 10−9) is ____________.
पर्याय
0.006%
0.013%
0.77%
1.6%
Advertisements
उत्तर
The percentage of pyridine (C5H5N) that forms pyridinium ion (C5H5NH) in a 0.10 M aqueous pyridine solution (Kb for C5H5N = 1.7 × 10−9) is 0.013%.
Explanation:
\[\ce{C5H5N + H - OH ⇌ C5H5\overset{+}{N}H + OH^-}\]
`(α^2"C")/(1 - α)` = Kb
α2C ≂ Kb
α = `sqrt("K"_"b")/"C" = sqrt(1.7 xx 10^-9)/0.1`
= `sqrt1.7 xx 10^-4`
Percentage of dissociation = `sqrt1.7 xx 10^-4 xx 100`
= 1.3 × 10−2
= 0.013%
APPEARS IN
संबंधित प्रश्न
It has been found that the pH of a 0.01M solution of an organic acid is 4.15. Calculate the concentration of the anion, the ionization constant of the acid and its pKa.
Assuming complete dissociation, calculate the pH of the following solution:
0.003 M HCl
Which of the following solution will have a pH value equal to 1.0?
Choose the most correct answer :
For pH > 7 the hydronium ion concentration would be _________.
Among the following, the CORRECT increasing order of acidity:
What is the pH of the resulting solution when equal volumes of 0.1 M NaOH and 0.01 M HCl are mixed?
If pH of a solution is 3.12, what would be the concentration of H+ ion?
Define pH.
Derive relationship between pH and pOH.
Define pH.
