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Use the rules for logarithms and exponents to solve for [OH-] in terms of pOH.
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Use the rules for logarithms and exponents to solve for [OH-] in terms of pOH.

Use the rules for logarithms and exponents to solve for [OH-] in terms of pOH.-example-1
User Sharad Biradar
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\text{ pOH = - log }\lbrack\text{OH}^-\rbrack
-\text{pOH = log }\lbrack\text{OH}^-\rbrack
\text{ 10}^{-\text{pOH}}\text{ = 10}^{\text{ log}\lbrack\text{OH}^-\rbrack}

logarithm and power 10 are inverse operations


\lbrack\text{OH}^-\rbrack\text{ = 10}^{-\text{pOH}}

The answer is [OH-] = 10^-(pOH)

and, if pOH = 2.77


\lbrack\text{ OH}^-\rbrack\text{ = 10}^{-2.77\text{ }}\text{ = 0.0017 M}

User Andrew Plank
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