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1.4: Refraction

  • Page ID
    4487
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    Learning Objectives

    By the end of this section, you will be able to:

    • Describe how rays change direction upon entering a medium
    • Apply the law of refraction in problem solving

    You may often notice some odd things when looking into a fish tank. For example, you may see the same fish appearing to be in two different places (Figure \(\PageIndex{1}\)). This happens because light coming from the fish to you changes direction when it leaves the tank, and in this case, it can travel two different paths to get to your eyes. The changing of a light ray’s direction (loosely called bending) when it passes through substances of different refractive indices is called refraction and is related to changes in the speed of light, \(v=c/n\). Refraction is responsible for a tremendous range of optical phenomena, from the action of lenses to data transmission through optical fibers.

    Figure a shows a drawing of a person looking at the corner of a fish tank. A fish in the corner appears as a double image of the fish, one image formed by rays passing through each of the sides meeting at the corner of the tank. Figure b shows a photograph of a similar situation.
    Figure \(\PageIndex{1}\): (a) Looking at the fish tank as shown, we can see the same fish in two different locations, because light changes directions when it passes from water to air. In this case, the light can reach the observer by two different paths, so the fish seems to be in two different places. This bending of light is called refraction and is responsible for many optical phenomena. (b) This image shows refraction of light from a fish near the top of a fish tank.

    Figure \(\PageIndex{2}\) shows how a ray of light changes direction when it passes from one medium to another. As before, the angles are measured relative to a perpendicular to the surface at the point where the light ray crosses it. (Some of the incident light is reflected from the surface, but for now we concentrate on the light that is transmitted.) The change in direction of the light ray depends on the relative values of the indices of refraction of the two media involved. In the situations shown, medium 2 has a greater index of refraction than medium 1. Note that as shown in Figure \(\PageIndex{1a}\), the direction of the ray moves closer to the perpendicular when it progresses from a medium with a lower index of refraction to one with a higher index of refraction. Conversely, as shown in Figure \(\PageIndex{1b}\), the direction of the ray moves away from the perpendicular when it progresses from a medium with a higher index of refraction to one with a lower index of refraction. The path is exactly reversible.

    The figure is an illustration of the refraction of light at an interface between two media. In both figures, medium 1 is above medium 2 and the interface is horizontal and a ray is drawn refracting at the interface. . A line perpendicular to the interface is drawn at the point of incidence. In figure a, light is incident from above, passing from medium 1 to medium 2. In medium 1, the incident ray makes an angle of theta one to the perpendicular and the refracted ray in medium 2 makes a smaller angle theta two one to the perpendicular. In figure b, light is incident from below, passing from medium 2 to medium 1. In medium 2, the incident ray makes an angle of theta two to the perpendicular and the refracted ray in medium 1 makes a larger angle theta one to the perpendicular. Theta one in figure a is equal to the angle theta one in figure b. Likewise, theta two in figure a is equal to the angle theta two in figure b.
    Figure \(\PageIndex{2}\): The change in direction of a light ray depends on how the index of refraction changes when it crosses from one medium to another. In the situations shown here, the index of refraction is greater in medium 2 than in medium 1. (a) A ray of light moves closer to the perpendicular when entering a medium with a higher index of refraction. (b) A ray of light moves away from the perpendicular when entering a medium with a lower index of refraction.

    The amount that a light ray changes its direction depends both on the incident angle and the amount that the speed changes. For a ray at a given incident angle, a large change in speed causes a large change in direction and thus a large change in angle. The exact mathematical relationship is the law of refraction, or Snell’s law, after the Dutch mathematician Willebrord Snell (1591–1626), who discovered it in 1621. The law of refraction is stated in equation form as

    \[n_1 \, \sin \, θ_1=n_2 \, \sin \, θ_2. \label{snell's law} \]

    Here (n_1\) and \(n_2\) are the indices of refraction for media 1 and 2, and \(θ_1\) and \(θ_2\) are the angles between the rays and the perpendicular in media 1 and 2. The incoming ray is called the incident ray, the outgoing ray is called the refracted ray, and the associated angles are the incident angle and the refracted angle, respectively.

    Snell’s experiments showed that the law of refraction is obeyed and that a characteristic index of refraction \(n\) could be assigned to a given medium and its value measured. Snell was not aware that the speed of light varied in different media, a key fact used when we derive the law of refraction theoretically using Huygens’s Principle.

    Example \(\PageIndex{1}\): Determining the Index of Refraction

    Find the index of refraction for medium 2 in Figure \(\PageIndex{1a}\), assuming medium 1 is air and given that the incident angle is 30.0° and the angle of refraction is 22.0°.

    Strategy

    The index of refraction for air is taken to be 1 in most cases (and up to four significant figures, it is 1.000). Thus, \(n_1=1.00\) here. From the given information, \(θ_1=30.0°\) and \(θ_2=22.0°\). With this information, the only unknown in Snell’s law is \(n_2\), so we can use Snell’s law (Equation \ref{snell's law}) to find it.

    Solution

    From Snell’s law (Equation \ref{snell's law}), we have

    \[\begin{align*} n_1\sin θ_1 &=n_2 \sin θ_2 \\[4pt] n_2 &= n_1\dfrac{\sin θ_1}{\sin θ_2}. \end{align*}  \nonumber \]

    Entering known values,

    \[\begin{align*} n_2 &=1.00 \dfrac{\sin 30.0°}{\sin 22.0°} \\[4pt] &= \dfrac{0.500}{0.375} \\[4pt] &=1.33. \end{align*} \nonumber \]

    Significance

    This is the index of refraction for water, and Snell could have determined it by measuring the angles and performing this calculation. He would then have found 1.33 to be the appropriate index of refraction for water in all other situations, such as when a ray passes from water to glass. Today, we can verify that the index of refraction is related to the speed of light in a medium by measuring that speed directly.

    Explore bending of light between two media with different indices of refraction. Use the “Intro” simulation and see how changing from air to water to glass changes the bending angle. Use the protractor tool to measure the angles and see if you can recreate the configuration in Example \(\PageIndex{1}\). Also by measurement, confirm that the angle of reflection equals the angle of incidence.

    Example \(\PageIndex{2}\): A Larger Change in Direction

    Suppose that in a situation like that in Example \(\PageIndex{1}\), light goes from air to diamond and that the incident angle is 30.0°. Calculate the angle of refraction θ2 in the diamond.

    Strategy

    Again, the index of refraction for air is taken to be n1=1.00, and we are given θ1=30.0°. We can look up the index of refraction for diamond, finding n2=2.419. The only unknown in Snell’s law is \(θ_2\), which we wish to determine.

    Solution

    Solving Snell’s law (Equation \ref{snell's law}) for \(\sin θ_2\) yields

    \[\sin θ_2=\frac{n_1}{n_2}\sin θ_1. \nonumber \]

    Entering known values,

    \[\sin θ_2=\frac{1.00}{2.419}\sin30.0°=(0.413)(0.500)=0.207. \nonumber \]

    The angle is thus

    \[θ_2=\sin^{−1}(0.207)=11.9°. \nonumber \]

    Significance

    For the same 30.0° angle of incidence, the angle of refraction in diamond is significantly smaller than in water (11.9° rather than 22.0°—see Example \(\PageIndex{2}\)). This means there is a larger change in direction in diamond. The cause of a large change in direction is a large change in the index of refraction (or speed). In general, the larger the change in speed, the greater the effect on the direction of the ray.

    Exercise \(\PageIndex{1}\): Zircon

    The solid with the next highest index of refraction after diamond is zircon. If the diamond in Example \(\PageIndex{2}\) were replaced with a piece of zircon, what would be the new angle of refraction?

    Answer

    15.1°


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