An element of density 8.0 g/cm^3 forms an FCC lattice with unit cell edge of 300 pm. Calculate the number of atoms present in 0.5kg of the element.(a) 95 x 10^23 atoms(b) 93.59 x 10^23 atoms(c) 92.59 x 10^23 atoms(d) 91.38 x 10^23 atomsI got this question in my homework.The above asked question is from Solid State topic in division Solid State of Chemistry – Class 12

An element of density 8.0 g/cm^3 forms an FCC lattice with unit cell e

1.	An element of density 8.0 g/cm^3 forms an FCC lattice with unit cell edge of 300 pm. Calculate the number of atoms present in 0.5kg of the element.(a) 95 x 10^23 atoms(b) 93.59 x 10^23 atoms(c) 92.59 x 10^23 atoms(d) 91.38 x 10^23 atomsI got this question in my homework.The above asked question is from Solid State topic in division Solid State of Chemistry – Class 12
Answer» Right choice is (c) 92.59 x 10^23 atoms The explanation: Given, DENSITY (ρ) = 8.0 g/cm^3 For FCC structure, Z = 4 Avogadro’s number (N0) = 6.02 x 10^23 Edge length of the UNIT cell (a) = 300 x 10^-10 cm The density of the element (ρ) = (Z x M)/ (a^3 x N0) THEREFORE, the Molar Mass (M) = (ρ x a^3 x N0)/(Z) = (8.0 x 6.02 x 10^23 x 27.0 x 10^-24) /4 = 32.508 g. Therefore, 32.508 g of the element CONTAINS 6.02 x 10^23 atoms. 500 g of the element would CONTAIN = (6.02 x 10^23 x 500)/ 32.508 = 92.59 x 10^23 atoms.

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