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30 September, 04:13

Unpolarized light passes through three polarizing filters. The first filter has its transmission axis parallel to the z direction, the second has its transmission axis at an angle of 30.0° from the z direction, and the third has its transmission axis at an angle of 60.0° from the z direction. If the light that emerges from the third filter has an intensity of 380.0 W/m2, what is the original intensity of the light? (Assume both angles are measured in the same direction from the + z axis.)

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  1. 30 September, 05:21
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    I₀ = 1351.1 W / m²

    Explanation:

    This problem can be solved using Malus's law.

    I = I₀ cos² θ

    Where I is the transmitted intensity, Io is the incident intensity and θ is the angle between the polarization of the light and the polarizer

    Let's use this equation for the third polarizer

    I₃ = I₂ cos² θ

    The angle with respect to the light that reaches it is the angle of the polarized minus the angle with which the light comes

    θ = 60 - 30

    θ = 30º

    We calculate the incident intensity on the third polarized

    I₂ = I₃ / cos² 30

    I₂ = 380.0 / cos² 30

    I₂ = 506.7 w / m²

    We calculate the incident intensity on the second polarizer

    I₂ = I₁ cos² 30

    I₁ = I₂ / cos₂ 30

    I₁ = 506.7 / cos² 30

    I₁ = 675.6 W / m²

    For the first polarizer the incident light is without polarization, so the polarizer lets half of the light pass, therefore, the light transmitted from the middle of the incident

    I₁ = I₀ / 2

    I₀ = 2 I₁

    I₀ = 2 675.6

    I₀ = 1351.1 W / m²
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