The de broglie wavelength of an electron (initially at rest) accelerated by an electric potential 'V' volts is given by: Given: me=9.1×10−31kg,e=1.6×10−19C, h=6.6×10−34Js
A
λ=2.46Vnm
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B
λ=1.23Vnm
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C
λ=1.23√Vnm
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D
λ=2.46√Vnm
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Solution
The correct option is Cλ=1.23√Vnm De broglie relation, λ=hmv=h√2m(K.E.)=h√2m(qV) where, λ, v, h, q, V and m are wavelength, velocity, Planck constant, charge, potential and mass of a particle, respectively.