Chemistry, asked by akshu2027, 29 days ago

an element has a bcc structure with unit cell edge length of 288 pm. how many unit cells and number of atoms are present in 200g of the element​

Answers

Answered by nimaichandramondal20
4

Answer:

Volume of unit cell =(288 pm)

3

=(288×10

−10

cm)

3

=2.389×10

−23

cm

3

Volume of 208 g of the element =

Density

Mass

=

7.2

208

=28.89 cm

3

Number of unit cells =

Volume of a unit cell

Total Volume

=

2.389×10

−23

28.89

=12.09×10

23

For a BCC structure, number of atoms per unit cell =2

∴ Number of atoms present in 208 g = No. of atoms per unit cell × No. of unit cells

=2×12.09×10

23

=24.18×10

23

=2.418×10

24

Explanation:

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