Answer to Question #283960 in Optics for Sherry

Solution

Given data in question

core refractive index of

optical cable

"n_1=" 1.5

refractive index of cladding

"n_2=" 1.47

a) critical angle is given by

"\\theta_c=\\sin^{-1}(\\frac{n_2}{n_1})"

Putting all values

"\\theta_c=\\sin^{-1}(\\frac{1.47}{1.5}) =78.52\u00b0"

b) Numerical aperture is given

"N. A=\\sqrt{n_1^2-n_2^2}"

Putting all values

Then we get

"N. A=\\sqrt{(1.5)^2-(1.47)^2}\\\\=0.298"

c) now acceptance angle is given by

"N. A=\\sin\\theta_a"

Putting NA value and solve this

"\\theta _a=\\sin^{-1}(0.298) =17.36\u00b0"