The hexagonal close-packed lattice can be represented by figure, if C = a √(3/3). There is an atom at each corner of the unit cell and another atom which can be located by moving one third the distance along the diagonal of the rhombus base, and moving perpendicularly upward by C / 2. A metal crystallizes in this lattice and has a density of 2.10 g / cc. Find out the distance between the nearest atoms in mathringA. (√2=1.4 and .N A =6 × 1023)

Question

The hexagonal close-packed lattice can be represented by figure, if C = a √(3/3). There is an atom at each corner of the unit cell and another atom which can be located by moving one third the distance along the diagonal of the rhombus base, and moving perpendicularly upward by C / 2. A metal crystallizes in this lattice and has a density of 2.10 g / cc. Find out the distance between the nearest atoms in mathringA. (√2=1.4 and .N A =6 × 1023) (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Volume of the cell =( text mass of cell / text density ) =(24 × 2/6 × 1028 × 2.10) =38.12 mathringA3 3 × 38.10=6 × (√3/4) a 2 × a √(8/3) a =3 mathringA

Volume of the cell = density mass of cell ​ =6×1028×2.1024×2​ =38.12A˚3 3×38.10=6×43​​a2×a38​​ a=3A˚

Volume of the cell $= \frac{mass of cell}{density}$
$= \frac{24 \times 2}{6 \times 1 0 ^{28} \times 2.10}$
$= 38.12 \overset{˚}{A}^{3}$
$3 \times 38.10 = 6 \times \frac{3}{4} a^{2} \times a \frac{8}{3}$
$a = 3 \overset{˚}{A}$