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Asked by joan

How many grams of Al(NO3)3 are needed to prepare 25.0 mL of a 0.750 M aqueous solution.
14 years ago

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Answered by DrBob222
How many moles do you want? That is M x L = ??
moles = grams/molar mass.
Solve for grams.
14 years ago
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How many grams of Al(NO3)3 are needed to prepare 25.0 mL of a 0.750 M aqueous solution.

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