The distance between Na +and Cl -ions in solid NaCl of density 43.1 g cm -3 is × 10-10 m. (Nearest Integer) (Given: N A =6.02 × 1023 mol -1 )

Question

The distance between Na +and Cl -ions in solid NaCl of density 43.1 g cm -3 is × 10-10 m. (Nearest Integer) (Given: N A =6.02 × 1023 mol -1 ) (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Unit cell formula - Na 4 Cl 4 Mass per unit cell =( Z × M ⋅ M ./ N A ) g =(4 × 58.5/N A ) g d text unit cell =( m / V )=( m / a 3) ⇒ (4 × 58.5/ N A ⋅ a 3)=43.1 ⇒ a 3=9.02 × 10-24 cm 3 ⇒ a =2.08 × 10-8 cm ⇒ a =2.08 × 10-10 m Also a =2( r Na ++ r Cl -) ⇒ r Na ++ r Cl -=1.04 × 10-10 m ∴ The answer is 1

Q. The distance between Na+and Cl−ions in solid NaCl of density 43.1gcm−3 is ________×10−10m. (Nearest Integer) (Given : NA​=6.02×1023mol−1 )

Unit cell formula −Na4​Cl4​ Mass per unit cell =NA​Z×M⋅M.​g =NA​4×58.5​g dunit cell ​=Vm​=a3m​ ⇒NA​⋅a34×58.5​=43.1 ⇒a3=9.02×10−24cm3 ⇒a=2.08×10−8cm ⇒a=2.08×10−10m Also a=2(rNa+​+rCl−​) ⇒rNa+​+rCl−​=1.04×10−10m ∴ The answer is 1

Q. The distance between $N a^{+}$ and $C l^{-}$ ions in solid $N a Cl$ of density $43.1 g c m^{- 3}$ is ________ $\times 1 0^{- 10} m$ . (Nearest Integer)
(Given : $N_{A} = 6.02 \times 1 0^{23} m o l^{- 1}$ )