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प्रश्न
For any prism, show that refractive index ‘n’ of its material is given by:
n = `(sin((A + delta m)/2))/(sin(A/2))`
where the terms have their usual meaning.
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उत्तर
A ray of light is passing through a triangular prism ABC as shown in the figure.
In ΔQLR,
Angle of deviation (δ) = ∠LQR + ∠LRQ
= (i1 − r1) + (i2 − r2)
= (i1 + i2) − (r1 + r2) ...(i)
In quadrilateral AQL'R,
∠A + ∠L' = 180° ...(ii)
and in ΔQL'R,
r1 + r2 + L' = 180° ...(iii)
From equations (ii) and (iii),
r1 + r2 = A ...(iv)
Putting the values of (r1 + r2) in eq (i),
δ = i1 + i2 − A ...(v)
For minimum deviation,
i1 = i2 = i
and δ = δm
∴ From equation (v),
δm = 2i − A
⇒ i = `(delta_m + A)/2`
From equation (iv) ...[∵ r1 = r2 = r]
and 2r = A
⇒ r = `A/2`
Using Snell’s law,
Refractive index of glass,
n = `(sin i)/(sin r)`
⇒ n = `(sin((delta_m + A)/2))/(sin(A/2))`
