Chapter 35 Diffraction and Polarization

Name: Chapter 35 Diffraction and Polarization
Uploaded: 2017-07-07T11:10:26+00:00
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Description: Chapter 35 Diffraction and Polarization

Chapter 35 Diffraction and Polarization
Chapter 35 opener. Parallel coherent light from a laser, which acts as nearly a point source, illuminates these shears. Instead of a clean shadow, there is a dramatic diffraction pattern, which is a strong confirmation of the wave theory of light. Diffraction patterns are washed out when typical extended sources of light are used, and hence are not seen, although a careful examination of shadows will reveal fuzziness. We will examine diffraction by a single slit, and how it affects the double-slit pattern. We also discuss diffraction gratings and diffraction of X-rays by crystals. We will see how diffraction affects the resolution of optical instruments, and that the ultimate resolution can never be greater than the wavelength of the radiation used. Finally we study the polarization of light.

Units of Chapter 35 Diffraction by a Single Slit or Disk
Intensity in Single-Slit Diffraction Pattern Diffraction in the Double-Slit Experiment Limits of Resolution; Circular Apertures Resolution of Telescopes and Microscopes; the λ Limit Resolution of the Human Eye and Useful Magnification Diffraction Grating

Units of Chapter 35 The Spectrometer and Spectroscopy
Peak Widths and Resolving Power for a Diffraction Grating X-Rays and X-Ray Diffraction Polarization Liquid Crystal Displays (LCD) Scattering of Light by the Atmosphere

Diffraction by a Single Slit or Disk
If light is a wave, it will diffract around a single slit or obstacle. Figure If light is a wave, a bright spot will appear at the center of the shadow of a solid disk illuminated by a point source of monochromatic light.

The resulting pattern of light and dark stripes is called a diffraction pattern. Figure Diffraction pattern of (a) a circular disk (a coin), (b) razor, (c) a single slit, each illuminated by a coherent point source of monochromatic light, such as a laser.

Pattern arises because different points along slit create wavelets that interfere with each other just as a double slit would. Figure Analysis of diffraction pattern formed by light passing through a narrow slit of width D.

The minima of the single-slit diffraction pattern occur when Figure Intensity in the diffraction pattern of a single slit as a function of sin θ. Note that the central maximum is not only much higher than the maxima to each side, but it is also twice as wide (2λ/D wide) as any of the others (only λ/D wide each).

What??? Wait a minute! The minima of the single-slit diffraction pattern occur when The maxima of the double-slit interference pattern occured when d

Single-slit diffraction vs. Double-slit Interference
Solution: a. The first minimum occurs at sin θ = λ/D = 0.75, or θ = 49°. The full width is twice this, or 98°. b. The width is 46 cm.

Single-slit diffraction Slit Diameter = D (or ‘s’) D is small! D sinq = ml for minima since sinq <1, minima at large q D Solution: a. The first minimum occurs at sin θ = λ/D = 0.75, or θ = 49°. The full width is twice this, or 98°. b. The width is 46 cm.

Double-slit interference Slit SPACING = d d > D typically d sinq = ml for maxima sinq = ml/d bright fringes at small q Solution: a. The first minimum occurs at sin θ = λ/D = 0.75, or θ = 49°. The full width is twice this, or 98°. b. The width is 46 cm.

Diffraction & Interference
Figure (a) Diffraction factor, (b) interference factor, and (c) the resultant intensity plotted as a function of θ for d = 6D = 60λ.

Example 35-1: Single-slit diffraction maximum
Light of wavelength 750 nm passes through a slit 1.0 x 10-3 mm wide. How wide is the central maximum (a) in degrees, and (b) in centimeters, on a screen 20 cm away? Solution: a. The first minimum occurs at sin θ = λ/D = 0.75, or θ = 49°. The full width is twice this, or 98°. b. The width is 46 cm.

Example 35-1: Single-slit diffraction maximum
Sound of wavelength 30 cm passes through a slit 1.0 m wide. How wide is the central maximum (a) in degrees, and (b) in meters, to an ear 10 m away? Solution: a. The first minimum occurs at sin θ = λ/D = 0.75, or θ = 49°. The full width is twice this, or 98°. b. The width is 46 cm.

Conceptual Example 35-2: Diffraction spreads.
Light shines through a rectangular hole that is narrower in the vertical direction than the horizontal. Solution: a. The pattern will be more spread out in the vertical direction, as the slit is narrower there. b. A pattern that is wider than it is high is desired, so the speaker should be high and narrow.

Conceptual Example 35-2: Diffraction spreads.
(a) Would you expect the diffraction pattern to be more spread out in the vertical direction or in the horizontal direction? (b) Should a rectangular loudspeaker horn at a stadium be high and narrow, or wide and flat? Solution: a. The pattern will be more spread out in the vertical direction, as the slit is narrower there. b. A pattern that is wider than it is high is desired, so the speaker should be high and narrow.

Reducing Diffraction: Rounded Edges
Solution: a. The pattern will be more spread out in the vertical direction, as the slit is narrower there. b. A pattern that is wider than it is high is desired, so the speaker should be high and narrow.

35-2 Intensity in Single-Slit Diffraction Pattern
Light passing through a single slit can be divided into a series of narrower strips; each contributes the same amplitude to the total intensity on the screen, but the phases differ due to the differing path lengths: Figure Slit of width D divided into N strips of width Δy. .

35-3 Diffraction in the Double-Slit Experiment
The diffraction factor (depends on β) appears as an “envelope” modifying the more rapidly varying interference factor (depends on δ). Figure (a) Diffraction factor, (b) interference factor, and (c) the resultant intensity plotted as a function of θ for d = 6D = 60λ.

The double-slit experiment also exhibits diffraction effects, as the slits have a finite width. This means the amplitude at an angle θ will be modified by the same factor as in the single-slit experiment: The intensity is, as usual, proportional to the square of the field.

Example 35-4: Diffraction plus interference. Show why the central diffraction peak shown, plotted for the case where d = 6D = 60λ, contains 11 interference fringes. Solution: The first minimum in the diffraction pattern occurs where sin θ = λ/D. Since d = 6D, d sin θ = 6λ. This means that the m=6 interference fringes will not appear; the central diffraction peak contains the fringes for m = 0 (one) and m = 1 through 5 (two each for a total of 10), making 11 fringes.

35-4 Limits of Resolution; Circular Apertures
Resolution is distance at which a lens can barely distinguish two separate objects. Resolution is limited by aberrations and by diffraction. Aberrations can be minimized Diffraction is unavoidable Due to size of lens compared to wavelength of the light.

For a circular aperture of diameter D, the central maximum has an angular width: Figure Intensity of light across the diffraction pattern of a circular hole.

Figure Intensity of light across the diffraction pattern of a circular hole.

The Rayleigh criterion states that two images are just resolvable when the center of one peak is over the first minimum of the other. Figure The Rayleigh criterion. Two images are just resolvable when the center of the diffraction peak of one is directly over the first minimum in the diffraction pattern of the other. The two point objects O and O’ subtend an angle θ at the lens; only one ray (it passes through the center of the lens) is drawn for each object, to indicate the center of the diffraction pattern of its image.

Example 35-5: Hubble Space Telescope.
The Hubble Space Telescope (HST): reflecting telescope placed in orbit above Earth’s atmosphere. Resolution not limited by turbulence in atmosphere. Its objective diameter is 2.4 m. For visible light, λ = 550 nm, estimate improvement in resolution the Hubble offers over Earth-bound telescopes, which are limited in resolution by movement of the Earth’s atmosphere to about half an arc second. Solution: The Hubble resolution is diffraction-limited; for λ = 550 nm, θ = 2.8 x 10-7 rad. Converting ½ arc second to radians gives 2.4 x 10-6 rad, so the Hubble’s resolution is approximately 10 times better.

Example 35-5: Hubble Space Telescope.
Its objective diameter is 2.4 m. For visible light, λ = 550 nm, estimate improvement in resolution the Hubble offers over Earth-bound telescopes, which are limited in resolution by movement of the Earth’s atmosphere to about half an arc second. (Each degree is divided into 60 minutes each containing 60 seconds, so 1° = 3600 arc seconds.) Solution: The Hubble resolution is diffraction-limited; for λ = 550 nm, θ = 2.8 x 10-7 rad. Converting ½ arc second to radians gives 2.4 x 10-6 rad, so the Hubble’s resolution is approximately 10 times better.

Example 35-6: Eye resolution.
You are in an airplane at an altitude of 10,000 m. If you look down at the ground, estimate the minimum separation s between objects that you could distinguish. Could you count cars in a parking lot? Consider only diffraction, and assume your pupil is about 3.0 mm in diameter and λ = 550 nm. Solution: The separation will be hθ (h is the height of the airplane) = 2.2 m. Cars are slightly larger than this, on average, so you could count them. Barely.

35-5 Resolution of Telescopes and Microscopes; the λ Limit
For telescopes, the resolution limit is as we have defined it: For microscopes, assuming the object is at the focal point, the resolving power is given by

Example 35-7: Telescope resolution (radio wave vs. visible light).
What is the theoretical minimum angular separation of two stars just resolved by (a) 200-inch telescope on Palomar Mountain; & (b) Arecibo radio telescope, diameter = 300 m & radius of curvature is also 300 m. Solution: a. θ = 1.3 x 10-7 rad (although the Palomar telescope is limited by atmospheric effects and not by diffraction) b. θ = 1.6 x 10-4 rad

Example 35-7: Telescope resolution (radio wave vs. visible light).
What is the theoretical minimum angular separation of two stars just resolved by (a) 200-inch telescope on Palomar Mountain (assume λ = 550 nm for the visible-light) (b) Arecibo radio telescope, diameter = 300 m & radius of curvature is also 300 m. (assume λ = 4 cm for the radio telescope) Solution: a. θ = 1.3 x 10-7 rad (although the Palomar telescope is limited by atmospheric effects and not by diffraction) b. θ = 1.6 x 10-4 rad

35-5 Resolution of Telescopes and Microscopes; the λ Limit
Typically, the focal length of a microscope lens is half its diameter, which shows that it is not possible to resolve details smaller than the wavelength being used:

35-6 Resolution of the Human Eye and Useful Magnification
The human eye can resolve objects that are about 1 cm apart at a distance of 20 m, or 0.1 mm apart at the near point. This limits the useful magnification of a light microscope to about 500x–1000x.

35-7 Diffraction Grating A diffraction grating consists of a large number of equally spaced narrow slits or lines. A transmission grating has slits, while a reflection grating has lines that reflect light. The more lines or slits there are, the narrower the peaks. Figure Intensity as a function of viewing angle θ (or position on the screen) for (a) two slits, (b) six slits. For a diffraction grating, the number of slits is very large (≈104) and the peaks are narrower still.

35-7 Diffraction Grating The maxima of the diffraction pattern are defined by Figure Spectra produced by a grating: (a) two wavelengths, 400 nm and 700 nm; (b) white light. The second order will normally be dimmer than the first order. (Higher orders are not shown.) If grating spacing is small enough, the second and higher orders will be missing.

35-7 Diffraction Grating Determine the angular positions of the first- and second-order maxima for light of wavelength 400 nm and 700 nm incident on a grating containing 10,000 lines/cm. Solution: The distance between the lines is 1.0 μm. For m = 1, the angles are 23.6° and 44.4°. For m = 2, the angle for 400 nm is 53.1°; the equation for sin θ gives a result greater than 1 for 700 nm, so the second order will not appear.

Example 35-9: Spectra overlap.
White light containing wavelengths from 400 nm to 750 nm strikes a grating containing 4000 lines/cm. Show that the blue at λ = 450 nm of the third-order spectrum overlaps the red at 700 nm of the second order. Solution: The third-order blue maximum is at sin θ = 0.540; the second-order red maximum is at sin θ = (a greater angle), so the spectra will overlap.

Conceptual Example 35-10: Compact disk.
When you look at the surface of a music CD, you see the colors of a rainbow. (a) Estimate the distance between the curved lines (to be read by the laser). (b) Estimate the distance between lines, noting that a CD contains at most 80 min of music, that it rotates at speeds from 200 to 500 rev/min, and that 2/3 of its 6-cm radius contains the lines. Solution: a. The CD acts as a reflection diffraction grating. In order to see rainbow colors, the distance between the lines must be one or a few optical wavelengths, or 0.5 – 1.5 μm. b. If the CD rotates at an average rate of 350 rev/min, and plays for 80 min, it must contain about 28,000 lines. If these are contained within 4 cm, the spacing between them must be about 1.4 μm, in agreement with the estimate in part (a).

35-8 The Spectrometer and Spectroscopy
A spectrometer makes accurate measurements of wavelengths using a diffraction grating or prism. Figure Spectrometer or spectroscope.

The wavelength can be determined to high accuracy by measuring the angle at which the light is diffracted:

Atoms and molecules can be identified when they are in a thin gas through their characteristic emission lines. Figure Line spectra for the gases indicated, and the spectrum from the Sun showing absorption lines

Example 35-11: Hydrogen spectrum.
Light emitted by hot hydrogen gas is observed with a spectroscope using a diffraction grating having 1.00 x 104 lines/cm. The spectral lines nearest to the center (0°) are a violet line at 24.2°, a blue line at 25.7°, a blue-green line at 29.1°, and a red line at 41.0° from the center. What are the wavelengths of these spectral lines of hydrogen? Since these are the lines nearest the center, m = 1. Then the wavelengths are 410 nm, 434 nm, 486 nm, and 656 nm.

35-10 X-Rays and X-Ray Diffraction
The wavelengths of X-rays are very short. Diffraction experiments are impossible to do with conventional diffraction gratings. Crystals have spacing between their layers that is ideal for diffracting X-rays. Figure X-ray diffraction by a crystal.

35-10 X-Rays and X-Ray Diffraction
X-ray diffraction is now used to study the internal structure of crystals; this is how the helical structure of DNA was determined. Figure X-rays can be diffracted from many possible planes within a crystal.

35-11 Polarization Light is polarized when its electric fields oscillate in a single plane, rather than in any direction perpendicular to the direction of propagation. Figure Transverse waves on a rope polarized (a) in a vertical plane and (b) in a horizontal plane.

35-11 Polarization Polarized light will not be transmitted through a polarized film whose axis is perpendicular to the polarization direction. Figure (a) Vertically polarized wave passes through a vertical slit, but a horizontally polarized wave will not (b).

35-11 Polarization When light passes through a polarizer, only the component parallel to the polarization axis is transmitted. If the incoming light is plane-polarized, the outgoing intensity is: Figure Vertical Polaroid transmits only the vertical component of a wave (electric field) incident upon it.

35-11 Polarization This means that if initially unpolarized light passes through crossed polarizers, no light will get through the second one. Figure Crossed Polaroids completely eliminate light.

35-11 Polarization Example 35-13: Two Polaroids at 60°.
Unpolarized light passes through two Polaroids; the axis of one is vertical and that of the other is at 60° to the vertical. Describe the orientation and intensity of the transmitted light. Solution: The first Polaroid reduces the intensity of the unpolarized light by a factor of two. The second Polaroid reduces the intensity by another factor of cos2 θ, giving an overall final intensity of 1/8 of the original intensity. The light will have the polarization of the second Polaroid, 60° to the vertical.

35-11 Polarization Conceptual Example 35-14: Three Polaroids.
When unpolarized light falls on two crossed Polaroids (axes at 90°), no light passes through. What happens if a third Polaroid, with axis at 45° to each of the other two, is placed between them? Solution: The first polarizer reduces the initial intensity by a factor of 2. The second reduces it by a factor of (cos 45°)2, or another factor of 2. Finally, the third polarizer reduces the intensity by yet another factor of 2, for an overall reduction of a factor of 8. However, without the central polarizer, the transmitted intensity would be zero.

35-11 Polarization Light is also partially polarized after reflecting from a nonmetallic surface. At a special angle, called the polarizing angle or Brewster’s angle, the polarization is 100%: . Figure Light reflected from a nonmetallic surface, such as the smooth surface of water in a lake, is partially polarized parallel to the surface.

35-11 Polarization Example 35-15: Polarizing angle.
(a) At what incident angle is sunlight reflected from a lake plane-polarized? (b) What is the refraction angle? Solution: a. Using n = 1.33 for water and n = 1 for air, Brewster’s angle is 53.1°. b. From Snell’s law, the angle of refraction is 36.9°. The sum of these two angles is 90°, as expected.

35-12 Liquid Crystal Displays (LCD)
Liquid crystals are unpolarized in the absence of an external voltage, and will easily transmit light. When an external voltage is applied, the crystals become polarized and no longer transmit; they appear dark. Liquid crystals can be found in many familiar applications, such as calculators and digital watches.

35-12 Liquid Crystal Displays (LCD)
This particular type of liquid crystal, called a twisted crystal, shows how the crystal passes light when the voltage is off but not when it is on. Figure (a) “Twisted” form of liquid crystal. Light polarization plane is rotated 90°. Only one line of molecules is shown. (b) Molecules disoriented by electric field. Plane of polarization is not changed, so light does not pass through the horizontal polarizer. (The transparent electrodes are not shown.)

35-13 Scattering of Light by the Atmosphere
Skylight is partially polarized due to scattering from molecules in the air. The amount of polarization depends on the angle that your line of sight makes with the Sun. Figure Unpolarized sunlight scattered by molecules of the air. An observer at right angles sees plane-polarized light, since the component of oscillation along the line of sight emits no light along that line.

Summary of Chapter 35 Light bends around obstacles and openings in its path, yielding diffraction patterns. Light passing through a narrow slit will produce a central bright maximum of width Minima occur at

Summary of Chapter 35 Diffraction limits the resolution of images.
Diffraction grating has many parallel slits or lines; peaks of constructive interference are given by Polarized light has its electric field vectors in a single plane.

Summary of Chapter 35 The intensity of plane-polarized light is reduced after it passes through another polarizer: Light can also be polarized by reflection; it is completely polarized when the reflection angle is the polarization angle:

Chapter 35 Diffraction and Polarization

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