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 ____________.
विकल्प
0.006%
0.013%
0.77%
1.6%
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
Assuming complete dissociation, calculate the pH of the following solution:
0.003 M HCl
Calculate the pH of the following solution:
2 g of TlOH dissolved in water to give 2 litre of solution.
Calculate the pH of the resultant mixtures: 10 mL of 0.1M H2SO4 + 10 mL of 0.1M KOH
What is the pOH if the hydrogen ion concentration in solution is 1 × 10–3 mol dm–3?
The pH of 0.001 M NaOH(aq) solution will be:
What is the pH of 0.01 M solution of ammonium hydroxide which is 10% dissociated?
A lab assistant prepared a solution by adding a calculated quantity of HCl gas at 25°C to get a solution with [H3O+]= 4 × 10−5 M. Is the solution neutral (or) acidic (or) basic.
The pH of a weak monoacidic base is 11.2, and its OH– ion concentration is ______.
If pH of a solution is 3.12, what would be the concentration of H+ ion?
Derive a relationship between pH and pOH.