Chemistry, asked by sanchit6670, 1 year ago

An elemnt occurs in the bcc structure with cell edge of 288pm. The density of the element is 7.2g cm how many atoms of the elemnt does 208h contain

Answers

Answered by yash2748
0
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Answered by SugaryGenius
3

{\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.

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