Advertisements
Advertisements
प्रश्न
In Young's double-slit experiment, the intensity at a point where the path difference is `lambda/4` is l. If the maximum intensity is l0, and then the ratio of `l_0/l` is ______.
`(cos45^circ = 1/sqrt2 = sin45^circ)`
पर्याय
4 : 1
1 : 2
2 : 1
1 : 4
MCQ
रिकाम्या जागा भरा
उत्तर
In Young's double-slit experiment, the intensity at a point where the path difference is `lambda/4` is l. If the maximum intensity is l0, and then the ratio of `l_0/l` is 2 : 1.
Explanation:
Since, phase difference, `Φ = (2pi)/lambda` × Path difference
= `(2pi)/lambda xx lambda/4 = pi/2`
∴ Intensity, l = `l_0cos^2(Phi/2)`
⇒ `l_0/l = 1/(cos^2(pi/4)) = 1/((1"/"sqrt2)^2) = 2 : 1`
shaalaa.com
या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
