In a Young’s double slit experiment, the separation between the slits = 2.0 mm, the wavelength of the light = 600 am and the distance of the screen from the slits = 2.0 m. If the intensity at the center of the central maximum is 0.20 W m-2, what will be the intensity at a point 0.5 cm away from this center along the width of the fringes?
Given, separation between the slits 
The distance between the screen and the slit, 
Wavelength of light, 
Let the intensity of each slit be 
and the corresponding amplitude be 
.
At the central maximum, both waves are in constructive interference and hence the intensity(
) is maximum and the amplitude is 
.
Therefore, 
At point 
, the path difference is given by
Therefore, the phase difference is
Therefore, the resultant amplitude becomes,
Hence, the amplitude is same as a.
Therefore, the intensity would be
.