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Question

A particle A of mass m and initial velocity v collides with a particle B of mass m2 which is at rest. The collision is head on, and elastic. The ratio of the de-Broglie wavelengths λA to λB after the collision is

A
λAλB=12
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B
λAλB=13
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C
λAλB=2
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D
λAλB=23
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Solution

The correct option is C λAλB=2
From conservation of linear momentum, mv=mvA+m2vB

v=vA+vB2

Also, by conservation of K.E,
v2=v2A+v2B2
(vA+vB2)2=v2A+(vB2)2

vAvB=v2B4

vB=4vA and mB=mA2

PA=mAvA

PB=mA2×4vA=2PA

λAλB=PBPA=2PAPA=2
Alternative:
Velocity of particle A after collision,
vA=mAmBmA+mBv=mm/23m/2v=v/3
Momentum of particle A,
PA=m×v3=mv3
Velocity of particle B after collision,
vB=2mAmA+mBv=2m3m/2v=4v3
Momentum of particle B,
PB=m×4v3=4mv3
λAλB=PBPA=2PAPA=2

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