Answer to Question #222815 in Optics for CHETU

The Refractive index of Liquid can be found by using the equation,

"\\mu= \\frac{4Rn\u03bb}{D^2_n}"

Here "\\mu" is the refractive index of the liquid.

R is the radius of curvature = 1 m

n is the count of bright ring.

"\\lambda" is the wavelength of refracted light.

D is the diameter of "n^{th}" ring "= 3.1 \\; mm = 3.1 \\times 10^{-3} \\;m"

"\\mu= \\frac{4 \\times 1 \\times 6 \\times 6000 \\times 10^{-10}}{(3.1 \\times 10^{-3})^2} \\\\\n\n= \\frac{14.4 \\times 10^{-6}}{9.61 \\times 10^{-6}} \\\\\n\n= 1.498"

Therefore refractive index of the liquid is 1.498.