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  • 25-06-2018
  • Chemistry
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What is the ph of a 0.563 m solution of ammonium bromide? kb (nh3) = 1.8 × 10-5?

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PBCHEM
PBCHEM PBCHEM
  • 06-07-2018
Answer : pH = 11.5

Explanation : Given [tex] K_{b}[/tex] = 1.8 X [tex] 10^{-5} [/tex] and C = 0.563;

So by using the formula of pOH;

pOH = - log [tex][ \sqrt{ K_{b} X C} ][/tex] = -log (3.18 X [tex] 10^{-3} [/tex] X 0.563) = 2.49.

Here, we got pOH = 2.49,

Now, we know pH = 14 - pOH 

Therefore, pH = 14 - 2.49 = 11.5
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