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Calculate the pH of a solution that is 0.050 M in hypobromous acid and 0.025 M in formic acid.

Calculate the pH of a solution that is 0.050 M in hypobromous acid and 0.025 M in-example-1
User Dan Mironis
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\text{ HCOOH + H}_2\text{O }\leftrightarrow\text{ HCOO}^-\text{ + H}_3\text{O}^+\text{ Ka=1.8}*10^(-4)
\text{ Ka = }\frac{\lbrack\text{ HCOO}^-\rbrack\lbrack\text{ H}_3\text{O}^+\rbrack}{\lbrack\text{ HCOOH}\rbrack}=\text{ }\frac{\text{ x}^2}{0.025\text{ - x}}\text{ }

We can neglect change in X, so


\text{ Ka = }\frac{\text{ x}^2}{0.025}
\text{ x = }\sqrt{\text{ Ka }*0.025}=\text{ }\sqrt{1.8*10^(-4)*0.025}=\text{ 0.002 M}

Now the equilibrum of hypobromous acid (smaller Ka)


\text{ HBrO + H}_2\text{O }\leftrightarrow\text{ BrO}^-\text{ + H}_3\text{O}^+\text{ Ka= 2.0}*10^(-9)


\text{ Ka = }\frac{\lbrack\text{ BrO}^-\rbrack\lbrack\text{ H}_3\text{O}^+\rbrack}{\lbrack\text{ HBrO}\rbrack}=\text{ }\frac{\text{ x \lparen x+0.002\rparen}}{0.05\text{ -x}}\text{ }

We can neglect change in X, so


\text{ Ka = }\frac{\text{ x}^2\text{ + 0.002x}}{0.05}

Solve for x

X is very small, order of magnitude -8. Then it can be neglected

So [H3O+] = 0.002 M pH= -log(0.002) = 2.70

Calculate the pH of a solution that is 0.050 M in hypobromous acid and 0.025 M in-example-1
Calculate the pH of a solution that is 0.050 M in hypobromous acid and 0.025 M in-example-2
User Multisync
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