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Use the rules for logarithms and exponents to solve for
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Use the rules for logarithms and exponents to solve for

Use the rules for logarithms and exponents to solve for-example-1
User Hawbsl
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1 Answer

5 votes

Answer:

pOH = -log[OH-]

Step-by-step explanation:

Starting from the equation of [OH-], we can obtain the pOH formula clearing pOH, where 10 passes to the other side of the equation as the base of log, and then the negative sign is passed:


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

User Timkl
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