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Question

In YDSE, the thickness of a glass slab (μ=1.5) which should be placed in front of the upper slit S1 so that the central maximum now lies at a point where the 5th bright fringe was lying earlier (before inserting the slab), is given by x×104 ˙A. The value of x is (Integer only)
[Wavelength of light =5000 ˙A]

A
5.0
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B
5.00
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C
5
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Solution

The formula for fringe shift is given by,

Δy=βλ(μ1)t

According to the question,
Δy=5β

(μ1)tβλ=5β

t=5λμ1=250001.51

t=50000 ˙A=5×104 ˙A

Given, t=x×104 ˙A

x=5

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