Answer to Question #215942 in Optics for Abilla Mokhlis

Relative index difference, Δ= 2% = 0.02

"\u03bb = 1.3 \\;\\mu m = 1.3 \\times 10^{-6} \\;m"

Core refractive index \mu_1= 1.5

Number of modes M = 1000

a) Proportion:

1.5 – 100 %

"\\mu_2" – (100 -2) %

"\\mu_2 = \\frac{1.5 \\times 98 }{100}=1.47"

b) Numerical Aperture

"NA = \\mu_1 (2 \u0394)^{\\frac{1}{2}} \\\\\n\nNA = 1.5 \\times (2 \\times 0.02)^{\\frac{1}{2}} = 0.3"

c) The diameter of the fiber core

"d = \\frac{\u03bb \\sqrt{2M}}{\\pi NA} \\\\\n\nd = \\frac{1.3 \\times 10^{-6} \\sqrt{2 \\times 1000}}{3.14 \\times 0.3} \\\\\n\n= 61.71 \\times 10^{-6} \\;m \\\\\n\n= 61.72 \\;\\mu m"