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Question

Acceptance angle (θ) for an optical fiber is defined as the maximum angle of incidence at the interface of medium (air usually) and core (μ=n1) for which light ray enters and travel along the optical fiber. Sine of acceptance angle is known as numerical aperture of the optical fiber. Then in the given setup, what is the value of numerical aperture?



A
n21n22
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B
n2n1
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C
n1n2
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D
n1
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Solution

The correct option is A n21n22

Applying Snell's law for AB, μairsin θ=n1sin θ1

sin θ=n1sin θ1 [μair=1]

Applying snell's law for BC (TIR condition) , n1sin(90θ1)=n2

cos θ1=n2n1

sin θ1=n21n22n1

sin θ=n21n22

Hence, option (d) is correct

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