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Question

The momentum of a particle with de-Broglie wavelength 1A is: (h=6.62×1034Js)

A
6.62×1024 kgms1
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B
6.62×1024 kgcms1
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C
9.62×1024 kgms1
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D
6.62×1022 kgms1
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Solution

The correct option is A 6.62×1024 kgms1
Given:
de Broglie wavelength(λ)=1=1010m
Plank's constant(h)=6.62×1034Js
Let 'p' be the momentum of the particle.
We know that de Broglie wavelength is given by
λ=hp
p=hλ=6.62×10341010=6.62×1024 kgms1.

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