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In a certain two-slit interference pattern, 10 bright fringes lie within the second side peak of the diffraction envelope and diffraction minima coincide with two-slit interference maxima. What is the ratio of the slit separation to the slit width?

Short Answer

Expert verified

The ratio of the slit separation to the slit width is 11.

Step by step solution

01

Concept/Significance of double slit experiment

There are mainly two phenomena occurs in double slit experiment. The first one is interference due to the difference in two paths, and the second one is diffraction in the single slit.

For the first minima in the diffraction pattern m1=1

role="math" localid="1663102529320" asinθ=m1λasinθ=λ …… (1)

The angular locations of the bright fringes of the double-slit interference pattern is given by,

role="math" localid="1663102556769" dsinθ=m2λ ……. (2)

Here, d is the slit separation, and a is slit width.

02

Find the ratio of the slit separation to the slit width

Combine equations (1) and (2).

m2=da

It is given that there are 10 bright fringes in one side, which means m2=11.

The ratio of the slit separation to the slit width will be as follows.

11=dada=11

Therefore, the ratio of the slit separation to the slit width is 11.

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Most popular questions from this chapter

(a) Figure 36-34a shows the lines produced by diffraction gratingsA and B using light of the same wavelength; the lines are of the same order and appear at the same angles θ. Which grating has the greater number of rulings? (b) Figure 36-34b shows lines of two orders produced by a single diffraction grating using light of two wavelengths, both in the red region of the spectrum. Which lines, the left pair or right pair, are in order with greater m? Is the center of the diffraction pattern located to the left or to the right in(c) Fig. 36-34a andd) Fig. 36-34b?

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