Chemistry, asked by zehramadani4065, 1 year ago

An element has bcc structure with a cell edge of 288 pm. The density of the element is 7.2 gcm-3. How many atoms are present in 208g of the element.

Answers

Answered by wwwsapnar8162
4

Answer:

M= 24.189 g/ mol

Explanation:

hope this helps you.....

thank you.....

❤❤❤❤.....

thats the solution

Attachments:
Answered by SugaryGenius
4

{\huge{\underline{\underline{\mathcal{\red{♡ANSWER♡}}}}}}.

  • ❤.. {Volume of the unit cell}={(288pm)^3}
  • ❤..={(288×10^-12 m)^-3 = (288×10^-10 cm)^3}
  • ❤..={2.39×10^-23 cm^3}
  • ❤..{Volume of208 g of element}
  • ❤..\frac{mass}{density}=\frac{208g}{7.2gcm^-3}={28.88cm^3}
  • ❤..{Number of unit cells in this volume}

=\frac{28.88cm^3}{2.39×10^-23Cm^3/unit cell}={12.08×10^23 unit cells}

  • ⭐.. Since each{bcc}cubic unit cell contains {2} atoms,therefore,the total number of atoms in {208g = 2}{(atoms/unit cell)×12.08×10^23} unit cells={24.16×10^23} atoms.
Similar questions