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What is the atomic mass of aluminum nitrate?

Answer
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Hint: The molecular mass of the given compound. Molecular mass is calculated as the sum of the atomic weights of each individual element constituting a molecule. For example, we have to know that the molecular weight of water which has two atoms of hydrogen and one atom of oxygen has a molecular weight of \[18\] since the atomic weight of each hydrogen is \[1\] and that of oxygen is \[16\].

Complete step by step answer:
We need to know that the given molecule is aluminum nitrate $Al{(N{O_3})_3}$. We can get the atomic mass of the constituent elements from the periodic table. The elements are aluminum, nitrogen and oxygen. As we know that the atomic mass of aluminum, $Al$ is $27.0$$g/mol$, that of Nitrogen, $N$is $14.01$ g/mol and that of oxygen, $O$ is 16.0 g/mol. Therefore, the molecular mass of aluminum nitrate $Al{(N{O_3})_3}$ is as follows: \[\left\{ {27.0 + 3 \times 14.01 + 9 \times 16} \right\}g/mol\] which is equal to $213g/mol$.
Hence the atomic mass of aluminum nitrate is $213g/mol$.

Note: The rules given above for the molecular mass of a compound is applicable only for molecules non-ionic compounds only which carry no charge. Also, there are different names for molecular mass of a compound. The name may be molar mass, molecular weight, gram formula mass, etc but they all account for the mass of one mole of a substance in grams per mole. It must also be noted that sometimes the atomic masses of the elements are not given but we can obtain them from the periodic table.