Optics 6 Question 14

16. In the Young’s double slit experiment using a monochromatic light of wavelength $\lambda$ the path difference (in terms of an integer $n$ ) corresponding to any point having half the peak intensity is

(a) $(2 n+1) \frac{\lambda}{2}$

(b) $(2 n+1) \frac{\lambda}{4}$

(c) $(2 n+1) \frac{\lambda}{8}$

(d) $(2 n+1) \frac{\lambda}{16}$

(2013 Adv.)

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Solution:

$$ \begin{aligned} & I=I _{\max } \cos ^{2} \frac{\varphi}{2} \\ & I=\frac{I _{\max }}{2} \end{aligned} $$

Given,

$\therefore$ From Eqs. (i) and (ii), we have

$$ \varphi=\frac{\pi}{2}, \frac{3 \pi}{2}, \frac{5 \pi}{2} $$

Or path difference, $\Delta x=\frac{\lambda}{2 \pi} \cdot \varphi$

$$ \therefore \quad \Delta x=\frac{\lambda}{4}, \frac{3 \lambda}{4}, \frac{5 \lambda}{4} . ., \frac{2 n+1}{4} \lambda $$



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