Respuesta :
Answer:
pH of the final solution = 3.8
Explanation:
Concentration of NaF = [tex]\frac{1.6 X 1000}{42 X 100}[/tex] molar
= 0.3 molar
NaF → Na⁺ + F⁻
HF ⇆ H⁺ + F⁻
- NaF is strong electrolyte so completely ionized but HF weak acid not completely ionized.
- Since F⁻ is common ion here
according to common ion effect dissociation of weak acid decreases.
Ka = [tex]\frac{[H]^{+}[F]^{-} }{[HF]}[/tex]
⇒ [H⁺] = [tex]\frac{K_{a} [HF]}{[F]^{-} }[/tex] ...............(1)
{Ka of HF = 3.5 x 10⁻⁴} & Concentration of HF = 30 x 4 x 10⁻³ = 0.12 molar
from equation 1
⇒ [H⁺] = [tex]\frac{3.5 X 10^{-4}X 0.12 }{0.3}[/tex] [Concentration of F⁻ ≡ Concentration of NaF]
⇒ [H⁺] = 0.00014
⇒pH = - log 0.00014 = 3.85
