An element crystallizes as body `-` centred cubic lattic. Its density is `7.12g cm^(-3` and the length of the side of the unit cell is `2.88Å`. Calculate the number of atoms present is `288g` of the element.A. `1.693 X 10^(24)`B. `1.693 X 10^(23)`C. `3.386 X 10^(23)`D. `3.386 X 10^(24)`

An element crystallizes as body `-` centred cubic lattic. Its density

1.	An element crystallizes as body `-` centred cubic lattic. Its density is `7.12g cm^(-3` and the length of the side of the unit cell is `2.88Å`. Calculate the number of atoms present is `288g` of the element.A. `1.693 X 10^(24)`B. `1.693 X 10^(23)`C. `3.386 X 10^(23)`D. `3.386 X 10^(24)`
Answer» Correct Answer - D Volume of unit cell `=a^(3)=(2.88overset(@)A)=(2.88xx10^(-6)cm)^(3)` `=23.887xx10^(-24)cm^(3)` Volume of 288g of the element `=("Mass")/("Density")=(288g)/(7.12g cm^(-3))=40.449cm^(3)` `=("volume of the element")/("volume of the unit cell")=(40.449)/(23.887xx10^(-24))=1.693xx10^(24)` `because` Each unit cell of b.c.c. lattice contains 2 atoms `therefore` number of atoms in 288g of element =No. of unit cells xx no. of atoms per unit cell `=1.693xx10^(24)xx2=3.386xx10^(24)`

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An element crystallizes as body `-` centred cubic lattic. Its density is `7.12g cm^(-3` and the length of the side of the unit cell is `2.88Å`. Calculate the number of atoms present is `288g` of the element.A. `1.693 X 10^(24)`B. `1.693 X 10^(23)`C. `3.386 X 10^(23)`D. `3.386 X 10^(24)`

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