Answer: The density of phosphorus is
![3.81g/cm^3](https://img.qammunity.org/2021/formulas/chemistry/college/wwc1xpp2ps1w0sd5m0mtouwfsbccv6jmf0.png)
Step-by-step explanation:
To calculate the density of phosphorus, we use the equation:
![\rho=(Z* M)/(N_(A)* a^(3))](https://img.qammunity.org/2021/formulas/chemistry/college/yjrfpwvf6kb4dasljsxig3d849folkihg9.png)
where,
= density
Z = number of atom in unit cell = 1 (CCP)
M = atomic mass of phosphorus = 31 g/mol
= Avogadro's number =
![6.022* 10^(23)](https://img.qammunity.org/2021/formulas/chemistry/middle-school/g7xgyg45ozrq4pcvaillv1vuj3s44s64vb.png)
a = edge length of unit cell =
(Conversion factor:
)
Putting values in above equation, we get:
![\rho=(1* 31)/(6.022* 10^(23)* (238* 10^(-10))^3)\\\\\rho=3.81g/cm^3](https://img.qammunity.org/2021/formulas/chemistry/college/n5k4yu381u1w39ihtmmpvka3nd4p920m9o.png)
Hence, the density of phosphorus is
![3.81g/cm^3](https://img.qammunity.org/2021/formulas/chemistry/college/wwc1xpp2ps1w0sd5m0mtouwfsbccv6jmf0.png)