Saved Bookmarks
| 1. |
(a) In what way is diffraction from each slit related to the interference pattern in a double slit experiment ? (b) Two wavelengths of sodium light 590 nm and 596 nm are used, in turn, to study the diffraction taking place at a single slit of aperture `2 xx 10^(-4)m.` The distance between the slit and the screen is 1.5 m. Calculate the separation between the positions of the first maxima of the diffraction pattern obtained in the two cases. |
|
Answer» (a) If the width of each slit is comparable to the wavelength of light used, the interference pattern thus obtained in the double slit experiment is modified by diffraction from each of two slits. (b) Given that : Wavelength of the light beam, `lambda_(1) =590 nm = 5.9 xx 10^(-7) m` Wavelength of another light beam, `lambda_(2) =596 nm = 5.96 xx 10^(-7) m` Distance of the slits from the screen = D = 1.5 m Distance between the two slits `= a = 2 xx 10^(-4) m` For the first secondry maxima, `sin theta=(3lambda_(1))/(2a)=(x_(1))/(D) " OR " x_(1)=(3lambda_(1)D)/(2a) and x_(2)=(3lambda_(2)D)/(2a)` `therefore ` Spacing between the positions of first secondary maxima of two sodium lines `x_(1)-x_(2)=(3D)/(2a) (lambda_(2)-lambda_(1))=6.75xx10^(-5)m.` |
|