For a molecule of an ideal gas. the number density is 2 √2 × 105 cm-3 and the mean free path is (10-2/π) cm . The diameter of the gas molecule is

Question

For a molecule of an ideal gas. the number density is 2 √2 × 105 cm-3 and the mean free path is (10-2/π) cm . The diameter of the gas molecule is (A) 5 × 10-4 cm  (B) 0.5 × 10-4 cm  (C) 2.5 × 10-4 cm  (D) 4 × 10-4 cm

Tardigrade Admin · Accepted Answer

Mean free path, λ=(1/√2 π n d2) ⇒ d2 =(1/√2 π n λ)=(1 × π/√2 × π × 2 √2 × 108 × 10-2) ⇒ d2=(1/4 × 106) ⇒ d=(1/2) × 10-3 cm ⇒ d=5 × 10-4 cm

Q. For a molecule of an ideal gas. the number density is $22 \times 1 0^{5} c m^{- 3}$ and the mean free path is $\frac{1 0 ^{- 2}}{π} c m$ . The diameter of the gas molecule is

$5 \times 1 0^{- 4} c m$

$0.5 \times 1 0^{- 4} c m$

$2.5 \times 1 0^{- 4} c m$

$4 \times 1 0^{- 4} c m$

Q. For a molecule of an ideal gas. the number density is 22​×105cm−3 and the mean free path is π10−2​cm . The diameter of the gas molecule is

5×10−4cm

0.5×10−4cm

2.5×10−4cm

4×10−4cm

Mean free path, λ=2​πnd21​ ⇒d2=2​πnλ1​=2​×π×22​×108×10−21×π​ ⇒d2=4×1061​ ⇒d=21​×10−3cm ⇒d=5×10−4cm

Q. For a molecule of an ideal gas. the number density is $22 \times 1 0^{5} c m^{- 3}$ and the mean free path is $\frac{1 0 ^{- 2}}{π} c m$ . The diameter of the gas molecule is

$5 \times 1 0^{- 4} c m$

$0.5 \times 1 0^{- 4} c m$

$2.5 \times 1 0^{- 4} c m$

$4 \times 1 0^{- 4} c m$