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Question

When a light of wavelength λ falls on the surface of a metal with threshold wavelength λ0, an electron of mass '2m' is emitted. The de Broglie wavelength of emitted electron is:

A
[h(λλ0)4mc(λoλ)]12
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B
[h(λλ0)2mc(λλ0)]12
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C
[hλλ02mc]12
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D
[h(λλ0)2mc(λλ0)]12
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Solution

The correct option is A [h(λλ0)4mc(λoλ)]12
Given:
Threshold wavelength of the metal surface=λ0Wavelength of the light=λMass of the electron=2m

Kinetic energy (KE) of the emitted electrons is given by:
KE=hc(1λ1λ0)=hc(λ0λλλ0)

de Broglie wavelength in terms of kinetic energy= h2KE(2m)
Substituting the above value of KE, we get:
=h2×hc(λ0λλλ0)×2m=[h(λλ0)4mc(λoλ)]12

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