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Question

n transparent slabs of refractive index 1.5 each having thickness 1 cm,2 cm,...n cm are arranged one over the other. A point object is seen through this combination from top with perpendicular light. If the shift of the object by combination is 5 cm. Then the value of n is

A
5
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B
4
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C
3
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D
2
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Solution

The correct option is A 5
For a small angle of incidence the shift S is

S=(11μ)Δt

where μ is the refractive index, and Δt is the thickness.

So the total shift due to all the slabs will be given as,

S=S1+S2+S3+ . . . +Sn

S=Δt1[11μ]+Δt2[11μ]+...+Δtn[11μ]

As the thickness of the slabs is given as 1 cm,2 cm,...n cm we have

S=[11μ](1+2+...+n)

Now the refractive index is given as μ=1.5=32 and the total shift is given as S=5 cm

5=(123)(n(n+1)2)

30=n(n+1)

5×6=n(n+1)

n=5

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