Which one of the following will have largest number of atoms?

(i) 1 g Au (s)

(ii) 1 g Na (s)

(iii) 1 g Li (s)

(iv) 1 g of Cl₂ (g)

(i) Atomic Mass of Gold [Au] = 197g

197g of Gold [Au] contains 6.023×10²³ atoms

Therefore 1 g of Gold will contain = [6.023×10²³]/197

= 3.057×10²¹ atoms

(ii) Atomic Mass of Sodium [Na] = 23g

23g of Sodium [Na] contains 6.023×10²³ atoms

Therefore 1 g of Sodium [Na] will contain = [6.023×10²³]/23

= 2.619×10²² atoms

(iii) Atomic Mass of Lithium [Li] = 7g

7g of Lithium [Li] contains 6.023×10²³ atoms

Therefore 1 g of Lithium [Li] will contain = [6.023×10²³]/7

= 8.604×10²² atoms

(iv) Atomic Mass of Chlorine [Cl₂] = 71g

71g of Chlorine [Cl₂] contains 6.023×10²³ atoms

Therefore 1 g of Chlorine [Cl₂] will contain = [6.023×10²³]/71

= 8.483×10²¹ atoms

Therefore, 1g of Lithium [Li] will contains the maximum number of atoms.