Visible light of wavelength 6000×10−8cm falls normally on a single slit and produces a diffraction pattern. It is found that the second diffraction minima is at 60o from the central maxima. If the first minimum is produced at θ1, then θ1 is close to
A
20o
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B
30o
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C
45o
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D
25o
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Solution
The correct option is D25o For single slit diffraction experiment:
Angle of minima are given by sinθn=nλd(sinθn≠θn as θ is large )sinθ2=sin60∘=√32=2λd=2×6000×10−10dsinθ1=λd=6000×10−10dDividing (1) and (2)⟹√32sinθ1=2⟹sinθ1=√34=0.43(1)(2)
As, the value is coming less than 30o the only available option are 20o and 25o but by using approximation we get θ1=25∘