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प्रश्न
The ionization constant of nitrous acid is 4.5 × 10–4. Calculate the pH of 0.04 M sodium nitrite solution and also its degree of hydrolysis.
उत्तर
NaNO2 is the salt of a strong base (NaOH) and a weak acid (HNO2).
\[\ce{NO_2^- + H_2O ↔ HNO_2 + OH-}\]
`"K"_"h" = (["HNO"_2]["OH"^(-)])/(["NO"_2^-])`
Now, If x moles of the salt undergo hydrolysis, then the concentration of various species present in the solution will be:
`["NO"_2^-]` = .04 - x ; 0.04
`["HNO"_2] = x`
`["OH"^(-)] = x`
`"K"_"h" = x^2/0.04 = 0.22 xx 10^(-10)`
`x^2 = .0088 xx 10^(-10)`
`x = .093 xx 10^(-5)`
`therefore ["OH"^(-)] = 0.093 xx 10^(-5) "M"`
`["H"_3"O"^+] = 10^(-14)/(.093 xx 10^(-5)) = 10.75 xx 10^(-9)` M
`=> "pH" = - log (10.75 xx 10^(-9))`
= 7.96
Therefore, degree of hydrolysis
`x/0.04 = (.093 xx 10^(-5))/.04 = 2.325 xx 10^(-5)`
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