
What is the atomic mass of aluminum nitrate?
Answer
515.1k+ views
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.
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.
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