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Question

The atomic masses of 'He' and 'Ne' are 4 and 20 amu respectively. The value of the de Broglie wavelength of 'He' gas at 73C is 'M' times that of de Broglie wavelength of Ne at +727C. Assuming that Kinetic energy is proportional to absolute temperature, 'M' is

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Solution

de Broglies's wavelength of a particle when kinetic energy (K.E) and mass (m) are given:
λ=h2K.Em
Given:
Mass of He atom(mHe)=4amu
Mass of Ne atom(mNe)=20amu
Temperature of He(THe)=73C=200K
Temperature of Ne(TNe)=+727C=1000K

We know that:
K.EαT
K.EHeK.ENe=THeTNe=2001000=15

Now, ratio of de Broglies wavelengths of Ne and He (λHe,λNe):
λHeλNe=2K.ENemNe2K.EHemHe=51×204=5λHe=5×λNe
So, value of M is 5

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