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In figure, parallel beam of light is inc...

In figure, parallel beam of light is incident on the plane of the slits of a Young's double-slit experiment. Light incident on the slit `S_(1)` passes through a medium of variable refractive index `mu = 1 + ax` (where 'x' is the distance from the plane of slits as shown), up to distance 'I' before falling on `S_(1)`. Rest of the space is filled with air. If at 'O' a minima is formed. then the minimum value of the positive constant a (in terms of l and wavelength `lambda` in air) is

A

`(lamda)/(l)`

B

`(lamda)/(l^(2))`

C

`(l^(2))/(lamda)`

D

none of these

Text Solution

Verified by Experts

The correct Answer is:
B
Path difference occurs due to the medium of variable refractive index `=(mu-1)t`
`thereforeint_(0)^(A)[(1+ax)-1]dx=(al^(2))/(2)` ltbr. For minima at 0 the path difference should be `(lamda)/(2)` (for minimum value of)
`therefore(al^(2))/(2)=(lamda)/(2)`
`thereforea=(lamda)/(l^(2))`
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