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प्रश्न
The power of a thin lens is +5 D. When it is immersed in a liquid, it behaves like a concave lens with a focal length of 100 cm. Calculate the refractive index of the liquid. Given the refractive index of glass = 1.5.
उत्तर
Given, the convergent lens,
The refractive index of air, µa = 1
The refractive index of glass, µg = 1.5
Power of lens, P = +5 D
So, its focal length,
`f = 1/P`
`f = 100/5`
f = 20 cm
Using lens maker's formula,
`1/f = ((mu_g - mu_a))/mu_a xx (1/R_1 - 1/R_2)`
Substituting the values given in the problem,
⇒ `1/20 = (1.5 - 1) xx (1/R_1 - 1/R_2)` ...........(i)
Now, when the convergent lens is immersed in a liquid of refractive index µ1, the convergent lens acts as a diverging lens of focal length -100 cm.
By lens maker's formula,
`1/(-100) = ((1.5 - mu_1))/mu_1(1/R_1 - 1/R_2)` ...........(ii)
Dividing (i) by (ii), we get,
`-5 = (1/2)/((1.5/mu_1 - 1))`
⇒ `1 - 1.5/mu_1 = 1/10`
⇒ `1.5/mu_1 = (1 - 1)/10`
⇒ `3/(2mu_1) = 9/10`
`mu_1 = 5/3`
