Respuesta :
Answer:
The number of Aluminium atoms present in per cubic meter is [tex]N=6.02\times 10^{28}\ atoms/m^3[/tex]
Explanation:
Given the density of Aluminium [tex](\rho )[/tex] is [tex]2.70\ g/cm^3[/tex]
And the atomic weight of Aluminium [tex](A_{Al})[/tex] is [tex]26.98\ g/mol[/tex]
Also, the Avogadro's number [tex](N_A)[/tex] is [tex]6.023\times 10^{23}\ atoms/mol[/tex]
We need to find the number of atoms per cubic meter [tex](N)[/tex]
[tex]N=\frac{\rho N_{A}}{A_{Al}}[/tex]
Plug the given values in the formula we get,
[tex]N=\frac{2.70\times 6.022\times 10^{23}}{26.98}\\ \\N=0.602\times 10^{23}\ atoms/cm^3\\N=6.02\times 10^{22}\ atoms/cm^3\\N=6.02\times 10^{22}\times10^6\ atoms/m^3[/tex]
[tex]N=6.02\times 10^{28}\ atoms/m^3[/tex]
So, the number of Aluminium atoms present in per cubic meter is [tex]N=6.02\times 10^{28}[/tex]
Answer:
We have 6.026 *10^28 Al atoms per cubic meter
Explanation:
Step 1: Data given
The density and atomic weight of aluminum are 2.70 g/cm3 and 26.98 g/mol respectively.
The value of Avogadro's number is 6.022 * 10^23 atoms/mol
Step 2: Calculate the number of atoms / cubic meter
N = (Na * ρal) / Mal
⇒ with Na = the number of Avogadro = 6.022 * 10^23 atoms / mol
⇒ with ρal = the density of aluminium = 2.70 g/cm³
⇒with Mal = the atomic weight of aluminium = 26.98g/mol
N = (6.022*10^23 *2.70) / 26.98
N = 6.026 *10^22 atoms / cm³ = 6.026 *10^28 atoms / m³
We have 6.026 *10^28 Al atoms per cubic meter
