The atomic masses of helium and neon are 4.0 and 20.0 amu respectively. The value of the de Broglie wavelength of helium gas at -73° C is M times the de Broglie wavelength of neon at 727° C. The value of M is

Question

The atomic masses of helium and neon are 4.0 and 20.0 amu respectively. The value of the de Broglie wavelength of helium gas at -73° C is M times the de Broglie wavelength of neon at 727° C. The value of M is (A) 5 (B) 25 (C) (1/5) (D) (1/25)

Tardigrade Admin · Accepted Answer

λH e(200 K)=M × λN e(1000 K)(λ=(h/m ⋅ v)) (h/4 a m u × Cm p(200))=M × (h/20 a m u × Cm p(1000))(Cm p=√(2 K T/m)) ⇒ (1/4 × √(2 K × 200)4)=(M/20 × √(2 K × 1000)20) ⇒ (1/4 × √50)=(M/20 × √50) ⇒ M=5

Q. The atomic masses of helium and neon are $4.0$ and $20.0$ amu respectively. The value of the de Broglie wavelength of helium gas at $- 7 3^{\circ} C$ is $M$ times the de Broglie wavelength of neon at $72 7^{\circ} C$ . The value of $M$ is

$5$

$25$

$\frac{1}{5}$

$\frac{1}{25}$

Q. The atomic masses of helium and neon are 4.0 and 20.0 amu respectively. The value of the de Broglie wavelength of helium gas at −73∘C is M times the de Broglie wavelength of neon at 727∘C. The value of M is

5

25

51​

251​

λHe​(200K)=M×λNe​(1000K)(λ=m⋅vh​) 4amu×Cmp​(200)h​=M×20amu×Cmp​(1000)h​(Cmp​=m2KT​​) ⇒4×42K×200​​1​=20×202K×1000​​M​ ⇒4×50​1​=20×50​M​ ⇒M=5

Q. The atomic masses of helium and neon are $4.0$ and $20.0$ amu respectively. The value of the de Broglie wavelength of helium gas at $- 7 3^{\circ} C$ is $M$ times the de Broglie wavelength of neon at $72 7^{\circ} C$ . The value of $M$ is

$5$

$25$

$\frac{1}{5}$

$\frac{1}{25}$