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Household ammonia, pH = 12.10 Calculate [H +] and [OH﹘]

1 Answer

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ANSWER


\begin{gathered} \text{ \lbrack H}^+\text{\rbrack = 7.943}*\text{ 10}^(-13)M \\ \text{ \lbrack OH}^-\text{\rbrack = 0.01259M} \end{gathered}

Step-by-step explanation

Given that;

The pH of ammonia is 12.10

Follow the steps below to find [H+] and [OH-]


\begin{gathered} \text{ pH = -log \lbrack H}^+\text{ \rbrack} \\ \text{ \lbrack H}^+\text{ \rbrack= 10}^(-pH) \\ \text{ \lbrack H}^+\text{ \rbrack= 10}^(-12.10) \\ \text{ \lbrack H}^+\text{ \rbrack= 7.943}*10^(-13)M \end{gathered}
\begin{gathered} \text{ pH = -log \lbrack H}^+\text{ \rbrack} \\ \text{ \lbrack H}^+\text{ \rbrack= 10}^(-pH) \\ \text{ \lbrack H}^+\text{ \rbrack= 10}^(-12.10) \\ \text{ \lbrack H}^+\text{ \rbrack= 7.943}*10^(-13)M \end{gathered}

Find [OH-] ?

Recall, that

pOH + pH = 14

pH = 12.10

pOH + 12.10 = 14

pOH = 14 - 12.10

pOH = 1.9


\begin{gathered} \text{ pOH = -log \lbrack OH}^-\text{\rbrack} \\ \text{ \lbrack OH}^-\text{\rbrack= 10}^(-pOH) \\ \text{ \lbrack OH}^-\text{\rbrack= 10}^(-1.9) \\ \text{ \lbrack OH}^-\text{\rbrack= 0.01259M} \end{gathered}

User Chris King
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