Answer to Question #202445 in Optics for Sunny Khan

For bright fringe

dsinθ=mλ

θ= angle between observer line to center and fringe

d = distance between the center of slits

d=0.06 mm

L=D=2 m (separation of the screen)

"sin\u03b8 = \\frac{y}{L}"

(a)

"d \\times \\frac{y}{L}=m\u03bb"

m=5

y=15 cm

"0.06 \\times 10^{-3}\\;m \\times \\frac{0.15 \\;m}{2\\;m}=5\u03bb \\\\\n\n\u03bb = 9 \\times 10^{-7} \\;m"

(b)

m=1

"d \\times \\frac{y}{L}=\u03bb \\\\\n\ny = \\frac{\u03bbL}{d} \\\\\n\n= \\frac{9 \\times 10^{-7} \\times 2}{0.06 \\times 10^{-3}} \\\\\n\n=0.03 \\;m = 3 \\;cm"