Derive the expression for refractive index of the material of the prism in terms of angle of the prism and angle of minimum deviation.

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Solution

In the given diagram,

$O P$ is the incidence ray, which is making the angle $i_{1}$ with normal, and $Q R$ is the angle of emergence, which is represented by $i_{2}$ . $A$ is the prism angle and $μ$ is the refractive index of the prism.

Now, We know that,

$A =$ Prism angle, $δ =$ Angle of deviation, $i_{1} =$ Angle of incidence, $i_{2} =$ Angle of emergent.

In the case of minimum deviation, $∠ r_{1} = ∠ r_{2} = ∠ r$

$A = ∠ r_{1} + ∠ r_{2}$

SO, $A = ∠ r + ∠ r = ∠ 2 r$

$∠ r = \frac{A}{2}$

Now, again

$A + δ = i_{1} + i_{2} (∵$ In the case of minimum deviation
$i_{1} = i_{2} = i$ and $δ = δ_{m})$

So, $A + δ_{m} = i + i = 2 i$

Now, $i = \frac{A + δ_{m}}{2}$

Now, from snell's rule,

$μ = \frac{s i n i}{s i n r}$

$μ = \frac{s i n \frac{A + δ_{m}}{2}}{s i n \frac{A}{2}}$

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