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Question

In a single slit diffraction experiment, first minimum for red light (660 nm) coincides with first maximum of some other light of wavelength λ. The value of λ in nm is

A
470 nm
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B
540 nm
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C
510 nm
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D
440 nm
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Solution

The correct option is D 440 nm
Wavelength of red light, λr=660 nm

The condition for diffraction minima is given by,

sinθ=nλb

For first minima (n=1) of red light,
sinθ=1×λra

The condition for diffraction maxima is given by,

bsinθ=(2n+1)λ2

For first maxima (n=1) of λ

sinθ=3λ2b

As, the two coincide, angular positions will be same

sinθ=sinθ

λrb=3λ2b

λ=23λr

λ=23×660 nm=440 nm

The correct option is (D).
Why this question?
Key Concept: The angular position of two coinciding diffraction fringes is the same.


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