Answer to Question #211553 in Optics for Jigyasa Karakoti

"\\text {The radius of the k-th bright Newton ring:}"

"r_k=\\sqrt{(k-\\frac{1}{2})\\frac{\\lambda R}{n}}(1)"

"\\text{measurement results for air:}"

"r_{16}=\\frac{1.8}{2}=0.9cm = 0.009m"

"n_E\\approx1"

"r_{16}=\\sqrt{15.5*\\lambda R}"

"\\text{measurement results for liquid:}"

"r'_{16}=\\frac{1.5}{2}=0.75cm = 0.0075m"

"r'_{16}=\\sqrt{15.5*\\frac{\\lambda R}{n_L}}"

"\\frac{r_{16}}{r'_{16}}=\\sqrt{n_L}"

"\\sqrt{n_L} = \\frac{0.009}{0.0075}=1.2"

"n_L=1.44"

"\\text{Radius of Newton's k-th dark ring:}"

"r_k=\\sqrt{k\\frac{\\lambda R}{n}}"

"r_5=\\sqrt{5*\\frac{\\lambda R}{n}}"

"\\text{From equality (1)}"

"r_{16}=\\sqrt{15.5*\\frac{\\lambda R}{n}}"

"r_5 = r_{16}*\\sqrt{\\frac{5}{15.5}}=0.005m"

"d_5 = 2*r_5=0.01m"

"\\text {Answer: refractive index of the liquid =} 1.44;"

"\\text{ the diameter of the 5- th dark ring= }0.01m"