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Question

If a material possesses relative permittivity 3 and relative permeability 43 for a given wavelength, the critical angle for that wavelength is.


A

15°

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B

30°

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C

45°

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D

60°

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Solution

The correct option is B

30°


Step 1: Given

Relative permittivity =3

Relative permeability =43

Step 2: Formula used

Note that if the speed of light in the given medium is Vthen,

V=1μ, where μ=permittivity, and =epsilon

Critical Angle, sinθc=nrni, where nr=refractive index, and ni=incident index

Step 3: Determine the critical angle

We know that n=cv , where n=is the index of refraction, c=speed of light in vacuum, and v=speed of light in that medium and

n=μrr1

Substitute the known values in equation 1.

n=3×43n=2

As we know critical angle, sinθc=nrni. So.

sinθc=12=30°

Therefore the critical angle for wavelength is θc=30°.

Hence, option B is correct.


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