What is the oxidation number of the $"Mo"$ in $"MoO"_4^(2-)$ ?

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What is the oxidation number of the $"Mo"$ in $"MoO"_4^(2-)$ ?

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Answer 1 · 2016-06-21T20:19:34

+6

Explanation:

Oxygen almost always has an oxidation number of -2, so it is safe to make the assumption that it does here (the exception are certain peroxides and superoxides).

Four oxygens give a total of (4 x -2) = -8.

The Molybdenum must be positive, but if the complex overall has a charge of -2, there are 2 negative charges left over.

To put it mathematically:
$x$ -8 = -2
$x$ must be +6.

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What is the oxidation number of the $"Mo"$ in $"MoO"_4^(2-)$ ?

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