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Characteristics of Light
Electromagnetic Waves
• An electromagnetic wave is a wave that consists of oscillating electric and magnetic fields, which radiate outward from the source at the speed of light.
• Light is a form of electromagnetic radiation.
• The electromagnetic spectrum includes more than visible light.
The Electromagnetic Spectrum
Characteristics of Light
Characteristics of Light
Electromagnetic Waves, continued
• Electromagnetic waves vary depending on frequency and wavelength.
• All electromagnetic waves move at the speed of light. The speed of light, c, equals
c = 3.00 108 m/s
• Wave Speed Equationc = f
speed of light = frequency wavelength
Characteristics of Light
Electromagnetic Waves, continued
• Waves can be approximated as rays. This approach to analyzing waves is called Huygens’ principle.
• Lines drawn tangent to the crest (or trough) of a wave are called wave fronts.
• In the ray approximation, lines, called rays, are drawn perpendicular to the wave front.
Characteristics of Light
Electromagnetic Waves, continued
• Illuminance decreases as the square of the distance from the source.
• The rate at which light is emitted from a source is called the luminous flux and is measured in lumens (lm).
Flat Mirrors
Reflection of Light
• Reflection is the change in direction of an electromagnetic wave at a surface that causes it to move away from the surface.
• The texture of a surface affects how it reflects light.– Diffuse reflection is reflection from a rough, texture
surface such as paper or unpolished wood.– Specular reflection is reflection from a smooth,
shiny surface such as a mirror or a water surface.
Flat Mirrors
Reflection of Light, continued
• The angle of incidence is the the angle between a ray that strikes a surface and the line perpendicular to that surface at the point of contact.
• The angle of reflection is the angle formed by the line perpendicular to a surface and the direction in which a reflected ray moves.
• The angle of incidence and the angle of reflection are always equal.
Flat Mirrors
Flat Mirrors
• Flat mirrors form virtual images that are the same distance from the mirror’s surface as the object is.
• The image formed by rays that appear to come from the image point behind the mirror—but never really do—is called a virtual image.
• A virtual image can never be displayed on a physical surface.
Image Formation by a Flat Mirror
Flat Mirrors
Curved Mirrors
Concave Spherical Mirrors
• A concave spherical mirror is a mirror whose reflecting surface is a segment of the inside of a sphere.
• Concave mirrors can be used to form real images.
• A real image is an image formed when rays of light actually pass through a point on the image. Real images can be projected onto a screen.
Image Formation by a Concave Spherical Mirror
Curved Mirrors
Curved Mirrors
Concave Spherical Mirrors, continued
• The Mirror Equation relates object distance (p), image distance (q), and focal length (f) of a spherical mirror.
1
p
1
q
1
f
1
object distance
1
image distance
1
focal length
Curved Mirrors
Concave Spherical Mirrors, continued
• The Equation for Magnification relates image height or distance to object height or distance, respectively.
'–
image height image distancemagnification = –
object height object distance
h qM
h p
Curved Mirrors
Concave Spherical Mirrors, continued
• Ray diagrams can be used for checking values calculated from the mirror and magnification equations for concave spherical mirrors.
• Concave mirrors can produce both real and virtual images.
Curved Mirrors
Sample Problem
Imaging with Concave Mirrors
A concave spherical mirror has a focal length of 10.0 cm. Locate the image of a pencil that is placed upright 30.0 cm from the mirror. Find the magnification of the image. Draw a ray diagram to confirm your answer.
Curved Mirrors
Sample Problem, continued
Imaging with Concave Mirrors
1. Determine the sign and magnitude of the focal length and object size.
f = +10.0 cm p = +30.0 cm
The mirror is concave, so f is positive. The object is in front of the mirror, so p is positive.
Curved Mirrors
Sample Problem, continued
Imaging with Concave Mirrors
2. Draw a ray diagram using the rules for drawing reference rays.
Curved Mirrors
Sample Problem, continued
Imaging with Concave Mirrors
3. Use the mirror equation to relate the object and image distances to the focal length.
–q
Mp
1
p
1
q
1
f
4. Use the magnification equation in terms of object and image distances.
Curved Mirrors
Sample Problem, continued
5. Rearrange the equation to isolate the image distance, and calculate. Subtract the reciprocal of the object distance from the reciprocal of the focal length to obtain an expression for the unknown image distance.
1 1 1
–q f p
Curved Mirrors
Sample Problem, continued
Substitute the values for f and p into the mirror equation and the magnification equation to find the image distance and magnification.
1 1 1 0.100 0.033 0.067– –
10.0 cm 30.0 cm cm cm cm
15 cm
15 cm– – –0.50
30.0 cm
q
q
qM
p
Curved Mirrors
Sample Problem, continued
6. Evaluate your answer in terms of the image location and size.
The image appears between the focal point (10.0 cm) and the center of curvature (20.0 cm), as confirmed by the ray diagram. The image is smaller than the object and inverted (–1 < M < 0), as is also confirmed by the ray diagram. The image is therefore real.
Curved Mirrors
Convex Spherical Mirrors
• A convex spherical mirror is a mirror whose reflecting surface is outward-curved segment of a sphere.
• Light rays diverge upon reflection from a convex mirror, forming a virtual image that is always smaller than the object.
Image Formation by a Convex Spherical Mirror
Curved Mirrors
Curved Mirrors
Sample Problem
Convex Mirrors
An upright pencil is placed in front of a convex spherical mirror with a focal length of 8.00 cm. An erect image 2.50 cm tall is formed 4.44 cm behind the mirror. Find the position of the object, the magnification of the image, and the height of the pencil.
Curved Mirrors
Sample Problem, continued
Convex Mirrors
Given:
Because the mirror is convex, the focal length is negative. The image is behind the mirror, so q is also negative.
f = –8.00 cm q = –4.44 cm h’ = 2.50 cm
Unknown:
p = ? h = ?
Curved Mirrors
Sample Problem, continued
Convex Mirrors
Diagram:
Curved Mirrors
Sample Problem, continued
Convex Mirrors
2. Plan
Choose an equation or situation: Use the mirror equation and the magnification formula.
1 1 1
– and – 'p
h hp f q q
1 1 1 '
and –h q
Mp q f h p
Rearrange the equation to isolate the unknown:
Curved Mirrors
Sample Problem, continued
Convex Mirrors
3. Calculate
Substitute the values into the equation and solve:
1 1 1–
–8.00 cm –4.44 cm
1 –0.125 –0.225 0.100–
cm cm cm
10.0 cm
p
p
p
Curved Mirrors
Sample Problem, continued
Convex Mirrors3. Calculate, continued
Substitute the values for p and q to find the magnifi-cation of the image.
10.0 cm– ' – (2.50 cm)
–4.44 cm
5.63 cm
ph h
q
h
Substitute the values for p, q, and h’ to find the height of the object.
–4.44 cm
– – 0.44410.0 cm
qM M
p
Curved Mirrors
Parabolic Mirrors
• Images created by spherical mirrors suffer from spherical aberration.
• Spherical aberration occurs when parallel rays far from the principal axis converge away from the mirrors focal point.
• Parabolic mirrors eliminate spherical aberration. All parallel rays converge at the focal point of a parabolic mirror.
Spherical Aberration and Parabolic Mirrors
Curved Mirrors
Color and Polarization
Color
• Additive primary colors produce white light when combined.
• Light of different colors can be produced by adding light consisting of the primary additive colors (red, green, and blue).
Color and Polarization
Color, continued
• Subtractive primary colors filter out all light when combined.
• Pigments can be produced by combining subtractive colors (magenta, yellow, and cyan).
Color and Polarization
Polarization of Light Waves
• Linear polarization is the alignment of electro-magnetic waves in such a way that the vibrations of the electric fields in each of the waves are parallel to each other.
• Light can be linearly polarized through transmission.
• The line along which light is polarized is called the transmission axis of that substance.
Linearly Polarized Light
Color and Polarization
Aligned and Crossed Polarizing Filters
Color and Polarization
Crossed FiltersAligned Filters
Color and Polarization
Polarization of Light Waves
• Light can be polarized by reflection and scattering.
• At a particular angle, reflected light is polarized horizontally.
• The sunlight scattered by air molecules is polarized for an observer on Earth’s surface.
Multiple Choice
1. Which equation is correct for calculating the focal point of a spherical mirror?
A. 1/f = 1/p – 1/q
B. 1/f = 1/p + 1/q
C. 1/p = 1/f + 1/q
D. 1/q = 1/f + 1/p
Multiple Choice, continued
1. Which equation is correct for calculating the focal point of a spherical mirror?
A. 1/f = 1/p – 1/q
B. 1/f = 1/p + 1/q
C. 1/p = 1/f + 1/q
D. 1/q = 1/f + 1/p
Multiple Choice, continued
2. Which of the following statements is true about the speeds of gamma rays and radio waves in a vacuum?
F. Gamma rays travel faster than radio waves.
G. Radio rays travel faster than gamma rays.
H. Gamma rays and radio waves travel at the same speed in a vacuum.
J. The speed of gamma rays and radio waves in a vacuum depends on their frequencies.
Multiple Choice, continued
2. Which of the following statements is true about the speeds of gamma rays and radio waves in a vacuum?
F. Gamma rays travel faster than radio waves.
G. Radio rays travel faster than gamma rays.
H. Gamma rays and radio waves travel at the same speed in a vacuum.
J. The speed of gamma rays and radio waves in a vacuum depends on their frequencies.
Multiple Choice, continued3. Which of the following correctly states the law of
reflection?A. The angle between an incident ray of light and the normal to the mirror’s surface equals the angle between the mirror’s surface and the reflected light ray.B. The angle between an incident ray of light and the mirror’s surface equals the angle between the normal to the mirror’s surface and the reflected light ray.C. The angle between an incident ray of light and the normal to the mirror’s surface equals the angle between the normal and the reflected light ray.D. The angle between an incident ray of light and the normal to the mirror’s surface is complementary to the angle between the normal and the reflected light ray.
Multiple Choice, continued3. Which of the following correctly states the law of
reflection?A. The angle between an incident ray of light and the normal to the mirror’s surface equals the angle between the mirror’s surface and the reflected light ray.B. The angle between an incident ray of light and the mirror’s surface equals the angle between the normal to the mirror’s surface and the reflected light ray.C. The angle between an incident ray of light and the normal to the mirror’s surface equals the angle between the normal and the reflected light ray.D. The angle between an incident ray of light and the normal to the mirror’s surface is complementary to the angle between the normal and the reflected light ray.
Multiple Choice, continued
4. Which of the following processes does not linearly polarize light?
F. scattering
G. transmission
H. refraction
J. reflection
Multiple Choice, continued
4. Which of the following processes does not linearly polarize light?
F. scattering
G. transmission
H. refraction
J. reflection
Multiple Choice, continued
5. Which kind of mirror is shown in the ray diagram?
A. flat
B. convex
C. concave
D. Not enough information is available to draw a conclusion.
Use the ray diagram below to answer questions 5–7.
Multiple Choice, continued
5. Which kind of mirror is shown in the ray diagram?
A. flat
B. convex
C. concave
D. Not enough information is available to draw a conclusion.
Use the ray diagram below to answer questions 5–7.
Multiple Choice, continued
6. What is true of the image formed by the mirror?F. virtual, upright, and diminishedG. real, inverted, and diminishedH. virtual, upright, and enlargedJ. real, inverted, and enlarged
Use the ray diagram below to answer questions 5–7.
Multiple Choice, continued
6. What is true of the image formed by the mirror?F. virtual, upright, and diminishedG. real, inverted, and diminishedH. virtual, upright, and enlargedJ. real, inverted, and enlarged
Use the ray diagram below to answer questions 5–7.
Multiple Choice, continued
7. What is the focal length of the mirror?
A. –10.0 cm
B. –4.30 cm
C. 4.30 cm
D. 10.0 cm
Use the ray diagram below to answer questions 5–7.
Multiple Choice, continued
7. What is the focal length of the mirror?
A. –10.0 cm
B. –4.30 cm
C. 4.30 cm
D. 10.0 cm
Use the ray diagram below to answer questions 5–7.
Multiple Choice, continued
8. Which combination of primary additive colors will produce magenta-colored light?
F. green and blue
G. red and blue
H. green and red
J. cyan and yellow
Multiple Choice, continued
8. Which combination of primary additive colors will produce magenta-colored light?
F. green and blue
G. red and blue
H. green and red
J. cyan and yellow
Multiple Choice, continued
9. What is the frequency of an infrared wave that has a vacuum wavelength of 5.5 µm?
A. 165 Hz
B. 5.5 1010 Hz
C. 5.5 1013 Hz
D. 5.5 1016 Hz
Multiple Choice, continued
9. What is the frequency of an infrared wave that has a vacuum wavelength of 5.5 µm?
A. 165 Hz
B. 5.5 1010 Hz
C. 5.5 1013 Hz
D. 5.5 1016 Hz
Multiple Choice, continued
10. If the distance from a light source is increased by a factor of 5, by how many times brighter does the light appear?
F. 25
G. 5
H. 1/5
J. 1/25
Multiple Choice, continued
10. If the distance from a light source is increased by a factor of 5, by how many times brighter does the light appear?
F. 25
G. 5
H. 1/5
J. 1/25
Short Response
11. White light is passed through a filter that allows only yellow, green, and blue light to pass through it. This light is then shone on a piece of blue fabric and on a piece of red fabric. Which colors do the two pieces of fabric appear to have under this light?
Short Response, continued
11. White light is passed through a filter that allows only yellow, green, and blue light to pass through it. This light is then shone on a piece of blue fabric and on a piece of red fabric. Which colors do the two pieces of fabric appear to have under this light?
Answer:
The blue fabric appears blue. The red fabric appears black.
Short Response, continued
12. The clothing department of a store has a mirror that consists of three flat mirrors, each arranged so that a person standing before the mirrors can see how an article of clothing looks from the side and back. Suppose a ray from a flashlight is shined on the mirror on the left. If the incident ray makes an angle of 65º with respect to the normal to the mirror’s surface, what will be the angle q of the ray reflected from the mirror on the right?
Short Response, continued
12. The clothing department of a store has a mirror that consists of three flat mirrors, each arranged so that a person standing before the mirrors can see how an article of clothing looks from the side and back. Suppose a ray from a flashlight is shined on the mirror on the left. If the incident ray makes an angle of 65º with respect to the normal to the mirror’s surface, what will be the angle q of the ray reflected from the mirror on the right?
Answer: 65º
Short Response, continued
13. X rays emitted from material around compact massive stars, such as neutron stars or black holes, serve to help locate and identify such objects. What would be the wavelength of the X rays emitted from material around such an object if the X rays have a frequency of 5.0 1019 Hz?
Short Response, continued
13. X rays emitted from material around compact massive stars, such as neutron stars or black holes, serve to help locate and identify such objects. What would be the wavelength of the X rays emitted from material around such an object if the X rays have a frequency of 5.0 1019 Hz?
Answer: 6.0 10–12 m = 6.0 pm
Extended Response
14. Explain how you can use a piece of polarizing plastic to determine if light is linearly polarized.
Extended Response, continued
14. Explain how you can use a piece of polarizing plastic to determine if light is linearly polarized.
Answer: Polarized light will pass through the plastic when the transmission axis of the plastic is parallel with the light’s plane of polarization. Rotating the plastic 90º will prevent the polarized light from passing through the plastic, so the plastic appears dark. If light is not linearly polarized, rotating the plastic 90º will have no effect on the light’s intensity.
Extended Response, continued
15. What is the distance between the surface of the mirror and the image?
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
15. What is the distance between the surface of the mirror and the image?
Answer: 15.0 cm
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
16. What is the focal length of the mirror?
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
16. What is the focal length of the mirror?
Answer: 10.0 cm
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
17. What is the magnification of the image?
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
17. What is the magnification of the image?
Answer: –0.500
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
18. If the candle is 12 cm tall, what is the image height?
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
18. If the candle is 12 cm tall, what is the image height?
Answer: –6.0 cm
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
19. Is the image real or virtual? Is it upright or inverted?
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Extended Response, continued
19. Is the image real or virtual? Is it upright or inverted?
Answer: real; inverted
Use the ray diagram below to answer questions 15–19.A candle is placed 30.0 cm from the reflecting surface of a concave mirror. The radius of curvature of the mirror is 20.0 cm.
Refraction
Refraction of Light
• The bending of light as it travels from one medium to another is call refraction.
• As a light ray travels from one medium into another medium where its speed is different, the light ray will change its direction unless it travels along the normal.
Refraction
Refraction of Light, continued
• Refraction can be explained in terms of the wave model of light.
• The speed of light in a vacuum, c, is an important constant used by physicists.
• Inside of other mediums, such as air, glass, or water, the speed of light is different and is usually less than c.
Refraction
The Law of Refraction
• The index of refraction for a substance is the ratio of the speed of light in a vacuum to the speed of light in that substance.
speed of light in a vacuum
index of refractionspeed of light in medium
cn
v
Indices of Refraction for Various Substances
Refraction
Refraction
The Law of Refraction, continued
• When light passes from a medium with a smaller index of refraction to one with a larger index of refraction (like from air to glass), the ray bends toward the normal.
• When light passes from a medium with a larger index of refraction to one with a smaller index of refraction (like from glass to air), the ray bends away from the normal.
Refraction
Refraction
Refraction
The Law of Refraction, continued
• Objects appear to be in different positions due to refraction.
• Snell’s Law determines the angle of refraction.
index of refraction of first medium sine of the angle of incidence =
index of refraction of second medium sine of the angle of refraction
sin sini i r rn n
Image Position for Objects in Different Media
Refraction
Refraction
Sample Problem
Snell’s Law
A light ray of wavelength 589 nm (produced by a sodium lamp) traveling through air strikes a smooth, flat slab of crown glass at an angle of 30.0º to the normal. Find the angle of refraction, r.
Refraction
Sample Problem, continued
Snell’s Law
Given: i = 30.0º ni = 1.00 nr = 1.52
Unknown: r = ?
Use the equation for Snell’s law.
–1 –1
sin sin
1.00sin sin sin sin30.0º
1.52
19.2º
i i r r
ir i
r
r
n n
n
n
Thin Lenses
Types of Lenses
• A lens is a transparent object that refracts light rays such that they converge or diverge to create an image.
• A lens that is thicker in the middle than it is at the rim is an example of a converging lens.
• A lens that is thinner in the middle than at the rim is an example of a diverging lens.
Thin Lenses
Types of Lenses, continued
• The focal point is the location where the image of an object at an infinite distance from a converging lens if focused.
• Lenses have a focal point on each side of the lens.
• The distance from the focal point to the center of the lens is called the focal length, f.
Thin Lenses
Lenses and Focal Length
Thin Lenses
Types of Lenses, continued
• Ray diagrams of thin-lens systems help identify image height and location.
• Rules for drawing reference rays
Thin Lenses
Characteristics of Lenses
• Converging lenses can produce real or virtual images of real objects.
• The image produced by a converging lens is real and inverted when the object is outside the focal point.
• The image produced by a converging lens is virtual and upright when the object is inside the focal point.
Thin Lenses
Characteristics of Lenses, continued
• Diverging lenses produce virtual images from real objects.
• The image created by a diverging lens is always a virtual, smaller image.
Thin Lenses
The Thin-Lens Equation and Magnification
• The equation that relates object and image distances for a lens is call the thin-lens equation.
• It is derived using the assumption that the lens is very thin.
1 1 1
distance from object to lens distance from image to lens focal length
1 1 1
p q f
Thin Lenses
The Thin-Lens Equation and Magnification, continued
• Magnification of a lens depends on object and image distances.
image height distance from image to lensmagnification = –
object height distance from object to lens
'–
h qM
h p
Thin Lenses
The Thin-Lens Equation and Magnification, continued• If close attention is
given to the sign conventions defined in the table, then the magnification will describe the image’s size and orientation.
Thin Lenses
Sample Problem
Lenses
An object is placed 30.0 cm in front of a converging lens and then 12.5 cm in front of a diverging lens. Both lenses have a focal length of 10.0 cm. For both cases, find the image distance and the magnification. Describe the images.
Thin Lenses
Sample Problem, continued
Lenses
1. Define
Given: fconverging = 10.0 cm fdiverging = –10.0 cm
pconverging = 30.0 cm pdiverging = 12.5 cm
Unknown: qconverging = ? qdiverging = ? Mconverging = ? Mdiverging = ?
Thin Lenses
Sample Problem, continued
Lenses1. Define, continued
Diagrams:
Thin Lenses
Sample Problem, continued
Lenses
2. Plan
Choose an equation or situation: The thin-lens equation can be used to find the image distance, and the equation for magnification will serve to describe the size and orientation of the image.
1 1 1 –
qM
p q f p
Thin Lenses
Sample Problem, continued
Lenses
2. Plan, continued
Rearrange the equation to isolate the unknown:
1 1 1–
q f p
Thin Lenses
Sample Problem, continuedLenses
3. Calculate
For the converging lens:1 1 1 1 1 2
– –10.0 cm 30.0 cm 30.0 cm
15.0 cm
15.0 cm– –
30.0 cm
–0.500
q f p
q
qM
p
M
Thin Lenses
Sample Problem, continuedLenses
3. Calculate, continued
For the diverging lens:1 1 1 1 1 22.5
– ––10.0 cm 12.5 cm 125 cm
–5.56 cm
–5.56 cm– –
12.5 cm
0.445
q f p
q
qM
p
M
Thin Lenses
Sample Problem, continuedLenses
4. Evaluate
These values and signs for the converging lens indicate a real, inverted, smaller image. This is expected because the object distance is longer than twice the focal length of the converging lens. The values and signs for the diverging lens indicate a virtual, upright, smaller image formed inside the focal point. This is the only kind of image diverging lenses form.
Thin Lenses
Eyeglasses and Contact Lenses
• The transparent front of the eye, called the cornea, acts like a lens.
• The eye also contains a crystalline lens, that further refracts light toward the light-sensitive back of the eye, called the retina.
• Two conditions, myopia and hyperopia, occur when light is not focused properly retina. Converging and diverging lenses can be used to correct these conditions.
Thin Lenses
Farsighted and Nearsighted
Thin Lenses
Combination of Thin Lenses
• An image formed by a lens can be used as the object for a second lens.
• Compound microscopes use two converging lenses. Greater magnification can be achieved by combining two or more lenses.
• Refracting telescopes also use two converging lenses.
Optical Phenomena
Total Internal Reflection
• Total internal reflection can occur when light moves along a path from a medium with a higher index of refraction to one with a lower index of refraction.
• At the critical angle, refracted light makes an angle of 90º with the normal.
• Above the critical angle, total internal reflection occurs and light is completely reflected within a substance.
Optical Phenomena
Total Internal Reflection, continued
• Snell’s law can be used to find the critical angle.
sin for
index of refraction of second mediumsine critical angle
index of refraction of first medium
rC i r
i
nn n
n
• Total internal reflection occurs only if the index of refraction of the first medium is greater than the index of refraction of the second medium.
Total Internal Reflection
Optical Phenomena
Optical Phenomena
Atmospheric Refraction
• Refracted light can create a mirage.
• A mirage is produced by the bending of light rays in the atmosphere where there are large temperature differences between the ground and the air.
Optical Phenomena
Dispersion
• Dispersion is the process of separating polychromatic light into its component wavelengths.
• White light passed through a prism produces a visible spectrum through dispersion.
Optical Phenomena
Rainbows
Optical Phenomena
Lens Aberrations
• Chromatic aberration is the focusing of different colors of light at different distances behind a lens.
• Chromatic aberration occurs because the index of refraction varies for different wavelengths of light.
Multiple Choice
1. How is light affected by an increase in the index of refraction?
A. Its frequency increases.
B. Its frequency decreases.
C. Its speed increases.
D. Its speed decreases.
Multiple Choice, continued
1. How is light affected by an increase in the index of refraction?
A. Its frequency increases.
B. Its frequency decreases.
C. Its speed increases.
D. Its speed decreases.
Multiple Choice, continued
2. Which of the following conditions is not necessary for refraction to occur?
F. Both the incident and refracting substances must be transparent.
G. Both substances must have different indices of refraction.
H. The light must have only one wavelength.
J. The light must enter at an angle greater than 0° with respect to the normal.
Multiple Choice, continued
2. Which of the following conditions is not necessary for refraction to occur?
F. Both the incident and refracting substances must be transparent.
G. Both substances must have different indices of refraction.
H. The light must have only one wavelength.
J. The light must enter at an angle greater than 0° with respect to the normal.
Multiple Choice, continued
Use the ray diagram below to answer questions 3–4.
3. What is the focal length of the lens?
A. -12.5 cm
B. -8.33 cm
C. 8.33 cm
D. 12.5 cm
Multiple Choice, continued
Use the ray diagram below to answer questions 3–4.
3. What is the focal length of the lens?
A. -12.5 cm
B. -8.33 cm
C. 8.33 cm
D. 12.5 cm
Multiple Choice, continued
Use the ray diagram below to answer questions 3–4.
4. What is true of the image formed by the lens?
F. real, inverted, and enlarged
G. real, inverted, and diminished
H. virtual, upright, and enlarged
J. virtual, upright, and diminished
Multiple Choice, continued
Use the ray diagram below to answer questions 3–4.
4. What is true of the image formed by the lens?
F. real, inverted, and enlarged
G. real, inverted, and diminished
H. virtual, upright, and enlarged
J. virtual, upright, and diminished
Multiple Choice, continued
5. A block of flint glass with an index of refraction of 1.66 is immersed in oil with an index of refraction of 1.33. How does the critical angle for a refracted light ray in the glass vary from when the glass is surrounded by air?
A. It remains unchanged.
B. It increases.
C. It decreases.
D. No total internal reflection takes place when the glass is placed in the oil.
Multiple Choice, continued
5. A block of flint glass with an index of refraction of 1.66 is immersed in oil with an index of refraction of 1.33. How does the critical angle for a refracted light ray in the glass vary from when the glass is surrounded by air?
A. It remains unchanged.
B. It increases.
C. It decreases.
D. No total internal reflection takes place when the glass is placed in the oil.
Multiple Choice, continued
6. Which color of light is most refracted during dispersion by a prism?
F. red
G. yellow
H. green
J. violet
Multiple Choice, continued
6. Which color of light is most refracted during dispersion by a prism?
F. red
G. yellow
H. green
J. violet
Multiple Choice, continued
7. If an object in air is viewed from beneath the surface of water below, where does the object appear to be?
A. The object appears above its true position.
B. The object appears exactly at its true position.
C. The object appears below its true position.
D. The object cannot be viewed from beneath the water’s surface.
Multiple Choice, continued
7. If an object in air is viewed from beneath the surface of water below, where does the object appear to be?
A. The object appears above its true position.
B. The object appears exactly at its true position.
C. The object appears below its true position.
D. The object cannot be viewed from beneath the water’s surface.
Multiple Choice, continued
8. The phenomenon called “looming” is similar to a mirage, except that the inverted image appears above the object instead of below it.What must be true if looming is to occur?F. The temperature of the air must increase with distance above the surface.G. The temperature of the air must decrease with distance above the surface.H. The mass of the air must increase with distance above the surface.J. The mass of the air must increase with distance above the surface.
Multiple Choice, continued
8. The phenomenon called “looming” is similar to a mirage, except that the inverted image appears above the object instead of below it.What must be true if looming is to occur?F. The temperature of the air must increase with distance above the surface.G. The temperature of the air must decrease with distance above the surface.H. The mass of the air must increase with distance above the surface.J. The mass of the air must increase with distance above the surface.
Multiple Choice, continued
9. Light with a vacuum wavelength of 500.0 nm passes into benzene, which has an index of refraction of 1.5. What is the wavelength of the light within the benzene?
A. 0.0013 nm
B. 0.0030 nm
C. 330 nm
D. 750 nm
Multiple Choice, continued
9. Light with a vacuum wavelength of 500.0 nm passes into benzene, which has an index of refraction of 1.5. What is the wavelength of the light within the benzene?
A. 0.0013 nm
B. 0.0030 nm
C. 330 nm
D. 750 nm
Multiple Choice, continued
10. Which of the following is not a necessary condition for seeing a magnified image with a lens?
F. The object and image are on the same side of the lens.
G. The lens must be converging.
H. The observer must be placed within the focal length of the lens.
J. The object must be placed within the focal length of the lens.
Multiple Choice, continued
10. Which of the following is not a necessary condition for seeing a magnified image with a lens?
F. The object and image are on the same side of the lens.
G. The lens must be converging.
H. The observer must be placed within the focal length of the lens.
J. The object must be placed within the focal length of the lens.
Short Answer
11. In both microscopes and telescopes, at least two converging lenses are used: one for the objective and one for the eyepiece. These lenses must be positioned in such a way that the final image is virtual and very much enlarged. In terms of the focal points of the two lenses, how must the lenses be positioned?
Short Answer, continued
11. In both microscopes and telescopes, at least two converging lenses are used: one for the objective and one for the eyepiece. These lenses must be positioned in such a way that the final image is virtual and very much enlarged. In terms of the focal points of the two lenses, how must the lenses be positioned?
Answer: The focal point of the objective must lie within the focal point of the eyepiece.
Short Answer, continued
12. A beam of light passes from the fused quartz of a bottle (n = 1.46) into the ethyl alcohol (n = 1.36) that is contained inside the bottle. If the beam of the light inside the quartz makes an angle of 25.0° with respect to the normal of both substances, at what angle to the normal will the light enter the alcohol?
Short Answer, continued
12. A beam of light passes from the fused quartz of a bottle (n = 1.46) into the ethyl alcohol (n = 1.36) that is contained inside the bottle. If the beam of the light inside the quartz makes an angle of 25.0° with respect to the normal of both substances, at what angle to the normal will the light enter the alcohol?
Answer: 27.0°
Short Answer, continued
13. A layer of glycerine (n = 1.47) covers a zircon slab (n = 1.92). At what angle to the normal must a beam of light pass through the zircon toward the glycerine so that the light undergoes total internal reflection?
Short Answer, continued
13. A layer of glycerine (n = 1.47) covers a zircon slab (n = 1.92). At what angle to the normal must a beam of light pass through the zircon toward the glycerine so that the light undergoes total internal reflection?
Answer: 50.0º
Extended Response
14. Explain how light passing through raindrops is reflected and dispersed so that a rainbow is produced. Include in your explanation why the lower band of the rainbow is violet and the outer band is red.
Extended Response, continued
14. Explain how light passing through raindrops is reflected and dispersed so that a rainbow is produced. Include in your explanation why the lower band of the rainbow is violet and the outer band is red.
Answer: There are three effects—a refraction, a reflection, and then a final refraction. The light of each wavelength in the visible spectrum is refracted by a different amount: the red light undergoes the least amount of refraction, and the violet light undergoes the most. (Answer continued on next slide.)
Extended Response, continued
14. Answer (continued): At the far side of the raindrop, the light is internally reflected and undergoes refraction again when it leaves the front side of the raindrop. Because of the internal reflection, the final dispersion of the light is such that the violet light makes an angle of 40° with the incident ray, and the red light makes an angle of 42° with the incident ray. For an observer, the upper edge of the rainbow has the color of the light that bends farthest from the incident light, so the outer band of the rainbow is red. Similarly, the lower edge has the color of the light that bends least from the incident light, so the inner band is violet. The net effect is that the ray that is refracted the most ends up closest to the incident light, that is, the smallest angular displacement.
Extended Response, continued
A collector wishes to observe a coin in detail and so places it 5.00 cm in front of a converging lens. An image forms 7.50 cm in front of the lens, as shown in the figure below.
15. What is the focal length of the lens?
Use the ray diagram below to answer questions 15–18.
Extended Response, continued
A collector wishes to observe a coin in detail and so places it 5.00 cm in front of a converging lens. An image forms 7.50 cm in front of the lens, as shown in the figure below.
15. What is the focal length of the lens?
Answer: 15 cm
Use the ray diagram below to answer questions 15–18.
Extended Response, continued
A collector wishes to observe a coin in detail and so places it 5.00 cm in front of a converging lens. An image forms 7.50 cm in front of the lens, as shown in the figure below.
16. What is the magnifi-cation of the coin’s image?
Use the ray diagram below to answer questions 15–18.
Extended Response, continued
A collector wishes to observe a coin in detail and so places it 5.00 cm in front of a converging lens. An image forms 7.50 cm in front of the lens, as shown in the figure below.
16. What is the magnifi-cation of the coin’s image?
Answer: 1.5
Use the ray diagram below to answer questions 15–18.
Extended Response, continued
A collector wishes to observe a coin in detail and so places it 5.00 cm in front of a converging lens. An image forms 7.50 cm in front of the lens, as shown in the figure below.
Use the ray diagram below to answer questions 15–18.
17. If the coin has a diameter of 2.8 cm, what is the diameter of the coin’s image?
Extended Response, continued
A collector wishes to observe a coin in detail and so places it 5.00 cm in front of a converging lens. An image forms 7.50 cm in front of the lens, as shown in the figure below.
Use the ray diagram below to answer questions 15–18.
17. If the coin has a diameter of 2.8 cm, what is the diameter of the coin’s image?Answer: 4.2 cm
Extended Response, continued
Use the ray diagram below to answer questions 15–18.
A collector wishes to observe a coin in detail and so places it 5.00 cm in front of a converging lens. An image forms 7.50 cm in front of the lens, as shown in the figure below.
18. Is the coin’s image virtual or real? upright or inverted?
Extended Response, continued
A collector wishes to observe a coin in detail and so places it 5.00 cm in front of a converging lens. An image forms 7.50 cm in front of the lens, as shown in the figure below.
18. Is the coin’s image virtual or real? upright or inverted?
Answer: virtual; upright
Use the ray diagram below to answer questions 15–18.
Interference
Combining Light Waves
• Interference takes place only between waves with the same wavelength. A light source that has a single wavelength is called monochromatic.
• In constructive interference, component waves combine to form a resultant wave with the same wavelength but with an amplitude that is greater than the either of the individual component waves.
• In the case of destructive interference, the resultant amplitude is less than the amplitude of the larger component wave.
Interference Between Transverse Waves
Interference
Interference
Combining Light Waves, continued
• Waves must have a constant phase difference for interference to be observed.
• Coherence is the correlation between the phases of two or more waves.– Sources of light for which the phase difference is
constant are said to be coherent.– Sources of light for which the phase difference is
not constant are said to be incoherent.
Incoherent and Coherent Light
Lasers
Interference
Demonstrating Interference
• Interference can be demonstrated by passing light through two narrow parallel slits.
• If monochromatic light is used, the light from the two slits produces a series of bright and dark parallel bands, or fringes, on a viewing screen.
Conditions for Interference of Light Waves
Interference
Interference
Demonstrating Interference, continued
• The location of interference fringes can be predicted.
• The path difference is the difference in the distance traveled by two beams when they are scattered in the same direction from different points.
• The path difference equals dsin.
Interference
Demonstrating Interference, continued
• The number assigned to interference fringes with respect to the central bright fringe is called the order number. The order number is represented by the symbol m.
• The central bright fringe at q = 0 (m = 0) is called the zeroth-order maximum, or the central maximum.
• The first maximum on either side of the central maximum (m = 1) is called the first-order maximum.
Interference
Demonstrating Interference, continued
• Equation for constructive interferenced sin = ±m m = 0, 1, 2, 3, …
The path difference between two waves = an integer multiple of the wavelength
• Equation for destructive interferenced sin = ±(m + 1/2) m = 0, 1, 2, 3, …
The path difference between two waves = an odd number of half wavelength
Interference
Sample Problem
Interference
The distance between the two slits is 0.030 mm. The second-order bright fringe (m = 2) is measured on a viewing screen at an angle of 2.15º from the central maximum. Determine the wavelength of the light.
Interference
Sample Problem, continued
Interference1. DefineGiven: d = 3.0 10–5 m
m = 2= 2.15º
Unknown: = ?
Diagram:
Interference
Sample Problem, continued
Interference2. Plan
Choose an equation or situation: Use the equation for constructive interference.
d sin = m
Rearrange the equation to isolate the unknown:
d sinm
Interference
Sample Problem, continued
Interference3. Calculate
Substitute the values into the equation and solve:
–5
–7 2
2
3.0 10 m sin2.15º
2
5.6 10 m 5.6 10 nm
5.6 10 nm
Interference
Sample Problem, continued
Interference4. Evaluate
This wavelength of light is in the visible spectrum. The wavelength corresponds to light of a yellow-green color.
Diffraction
The Bending of Light Waves
• Diffraction is a change in the direction of a wave when the wave encounters an obstacle, an opening, or an edge.
• Light waves form a diffraction pattern by passing around an obstacle or bending through a slit and interfering with each other.
• Wavelets (as in Huygens’ principle) in a wave front interfere with each other.
Destructive Interference in Single-Slit Diffraction
Diffraction
Diffraction
The Bending of Light Waves, continued
• In a diffraction pattern, the central maximum is twice as wide as the secondary maxima.
• Light diffracted by an obstacle also produces a pattern.
Diffraction
Diffraction Gratings
• A diffraction grating uses diffraction and interference to disperse light into its component colors.
• The position of a maximum depends on the separation of the slits in the grating, d, the order of the maximum m,, and the wavelength of the light, .
d sin = ±m m = 0, 1, 2, 3, …
Constructive Interference by a Diffraction Grating
Diffraction
Diffraction
Sample Problem
Diffraction Gratings
Monochromatic light from a helium-neon laser ( = 632.8 nm) shines at a right angle to the surface of a diffraction grating that contains 150 500 lines/m. Find the angles at which one would observe the first-order and second-order maxima.
Diffraction
Sample Problem, continued
Diffraction Gratings
1. Define
Given: = 632.8 nm = 6.328 10–7 m
m = 1 and 2
Unknown: = ? 2 = ?
d 1
150 500lines
m
1
150 500m
Diffraction
Sample Problem, continued
Diffraction Gratings
1. Define, continued
Diagram:
Diffraction
Sample Problem, continued
Diffraction Gratings
2. Plan
Choose an equation or situation: Use the equation for a diffraction grating.
d sin = ±mRearrange the equation to isolate the unknown:
–1sinm
d
Diffraction
Sample Problem, continued
Diffraction Gratings
3. Calculate
Substitute the values into the equation and solve:
For the first-order maximum, m = 1:
–7–1 –1
1
1
6.328 10 msin sin
1m
150 500
5.465º
d
Diffraction
Sample Problem, continued
Diffraction Gratings
3. Calculate, continued
For m = 2:
–12
–7
–12
2
2sin
2 6.328 10 msin
1m
150 500
10.98º
d
Diffraction
Sample Problem, continued
Diffraction Gratings
4. Evaluate
The second-order maximum is spread slightly more than twice as far from the center as the first-order maximum. This diffraction grating does not have high dispersion, and it can produce spectral lines up to the tenth-order maxima (where sin = 0.9524).
Diffraction
Diffraction and Instrument Resolution
• The ability of an optical system to distinguish between closely spaced objects is limited by the wave nature of light.
• Resolving power is the ability of an optical instrument to form separate images of two objects that are close together.
• Resolution depends on wavelength and aperture width. For a circular aperture of diameter D:
1.22
D
Resolution of Two Light Sources
Diffraction
Lasers
Lasers and Coherence
• A laser is a device that produces coherent light at a single wavelength.
• The word laser is an acronym of “light amplification by stimulated emission of radiation.”
• Lasers transform other forms of energy into coherent light.
Lasers
Applications of Lasers
• Lasers are used to measure distances with great precision.
• Compact disc and DVD players use lasers to read digital data on these discs.
• Lasers have many applications in medicine.– Eye surgery– Tumor removal– Scar removal
Components of a Compact Disc Player
Lasers
Multiple Choice
1. In the equations for interference, what does the term d represent?
A. the distance from the midpoint between the two slits to the viewing screen
B. the distance between the two slits through which a light wave passes
C. the distance between two bright interference fringes
D. the distance between two dark interference fringes
Multiple Choice, continued
1. In the equations for interference, what does the term d represent?
A. the distance from the midpoint between the two slits to the viewing screen
B. the distance between the two slits through which a light wave passes
C. the distance between two bright interference fringes
D. the distance between two dark interference fringes
Multiple Choice, continued
2. Which of the following must be true for two waves with identical amplitudes and wavelengths to undergo complete destructive interference?
F. The waves must be in phase at all times.
G. The waves must be 90º out of phase at all times.
H. The waves must be 180º out of phase at all times.
J. The waves must be 270º out of phase at all times.
Multiple Choice, continued
2. Which of the following must be true for two waves with identical amplitudes and wavelengths to undergo complete destructive interference?
F. The waves must be in phase at all times.
G. The waves must be 90º out of phase at all times.
H. The waves must be 180º out of phase at all times.
J. The waves must be 270º out of phase at all times.
Multiple Choice, continued
3. Which equation correctly describes the condition for observing the third dark fringe in an interference pattern?
A. dsin = /2
B. dsin = 3/2
C. dsin = 5/2
D. dsin = 3
Multiple Choice, continued
3. Which equation correctly describes the condition for observing the third dark fringe in an interference pattern?
A. dsin = /2
B. dsin = 3/2
C. dsin = 5/2
D. dsin = 3
Multiple Choice, continued
4. Why is the diffraction of sound easier to observe than the diffraction of visible light?
F. Sound waves are easier to detect than visible light waves.
G. Sound waves have longer wavelengths than visible light waves and so bend more around barriers.
H. Sound waves are longitudinal waves, which diffract more than transverse waves.
J. Sound waves have greater amplitude than visible light waves.
Multiple Choice, continued
4. Why is the diffraction of sound easier to observe than the diffraction of visible light?
F. Sound waves are easier to detect than visible light waves.
G. Sound waves have longer wavelengths than visible light waves and so bend more around barriers.
H. Sound waves are longitudinal waves, which diffract more than transverse waves.
J. Sound waves have greater amplitude than visible light waves.
Multiple Choice, continued
5. Monochromatic infrared waves with a wavelength of 750 nm pass through two narrow slits. If the slits are 25 µm apart, at what angle will the fourth order bright fringe appear on a viewing screen?
A. 4.3º
B. 6.0º
C. 6.9º
D. 7.8º
Multiple Choice, continued
5. Monochromatic infrared waves with a wavelength of 750 nm pass through two narrow slits. If the slits are 25 µm apart, at what angle will the fourth order bright fringe appear on a viewing screen?
A. 4.3º
B. 6.0º
C. 6.9º
D. 7.8º
Multiple Choice, continued
6. Monochromatic light with a wavelength of 640 nm passes through a diffraction grating that has 5.0 104 lines/m. A bright line on a screen appears at an angle of 11.1º from the central bright fringe.What is the order of this bright line?
F. m = 2
G. m = 4
H. m = 6
J. m = 8
Multiple Choice, continued
6. Monochromatic light with a wavelength of 640 nm passes through a diffraction grating that has 5.0 104 lines/m. A bright line on a screen appears at an angle of 11.1º from the central bright fringe.What is the order of this bright line?
F. m = 2
G. m = 4
H. m = 6
J. m = 8
Multiple Choice, continued
7. For observing the same object, how many times better is the resolution of the telescope shown on the left in the figure below than that of the telescope shown on the right?
A. 4
B. 2
C. 1/2
D. 1/4
Multiple Choice, continued
7. For observing the same object, how many times better is the resolution of the telescope shown on the left in the figure below than that of the telescope shown on the right?
A. 4
B. 2
C. 1/2
D. 1/4
Multiple Choice, continued
8. What steps should you employ to design a telescope with a high degree of resolution?
F. Widen the aperture, or design the telescope to detect light of short wavelength.
G. Narrow the aperture, or design the telescope to detect light of short wavelength.
H. Widen the aperture, or design the telescope to detect light of long wavelength.
J. Narrow the aperture, or design the telescope to detect light of long wavelength.
Multiple Choice, continued
8. What steps should you employ to design a telescope with a high degree of resolution?
F. Widen the aperture, or design the telescope to detect light of short wavelength.
G. Narrow the aperture, or design the telescope to detect light of short wavelength.
H. Widen the aperture, or design the telescope to detect light of long wavelength.
J. Narrow the aperture, or design the telescope to detect light of long wavelength.
Multiple Choice, continued
9. What is the property of a laser called that causes coherent light to be emitted?
A. population inversion
B. light amplification
C. monochromaticity
D. stimulated emission
Multiple Choice, continued
9. What is the property of a laser called that causes coherent light to be emitted?
A. population inversion
B. light amplification
C. monochromaticity
D. stimulated emission
Multiple Choice, continued
10. Which of the following is not an essential component of a laser?
F. a partially transparent mirror
G. a fully reflecting mirror
H. a converging lens
J. an active medium
Multiple Choice, continued
10. Which of the following is not an essential component of a laser?
F. a partially transparent mirror
G. a fully reflecting mirror
H. a converging lens
J. an active medium
Short Response
11. Why is laser light useful for the purposes of making astronomical measurements and surveying?
Short Response, continued
11. Why is laser light useful for the purposes of making astronomical measurements and surveying?
Answer: The beam does not spread out much or lose intensity over long distances.
Short Response, continued
12. A diffraction grating used in a spectrometer causes the third-order maximum of blue light with a wavelength of 490 nm to form at an angle of 6.33º from the central maximum (m = 0). What is the separation between the lines of the grating?
Short Response, continued
12. A diffraction grating used in a spectrometer causes the third-order maximum of blue light with a wavelength of 490 nm to form at an angle of 6.33º from the central maximum (m = 0). What is the separation between the lines of the grating?
Answer: 7.5 104 lines/m = 750 lines/cm
Short Response, continued
13. Telescopes that orbit Earth provide better images of distant objects because orbiting telescopes are more able to operate near their theoretical resolution than telescopes on Earth. The orbiting telescopes needed to provide high resolution in the visible part of the spectrum are much larger than the orbiting telescopes that provide similar images in the ultraviolet and X-ray portion of the spectrum. Explain why the sizes must vary.
Short Response, continued
13. (See previous slide for question.)
Answer: The resolving power of a telescope depends on the ratio of the wavelength to the diameter of the aperture. Telescopes using longer wavelength radiation (visible light) must be larger than those using shorter wavelengths (ultraviolet, X ray) to achieve the same resolving power.
Extended Response
14. Radio signals often reflect from objects and recombine at a distance. Suppose you are moving in a direction perpendicular to a radio signal source and its reflected signal. How would interference between these two signals sound on a radio receiver?
Extended Response, continued
14. (See previous slide for question.)
Answer: The interference pattern for radio signals would “appear” on a radio receiver as an alternating increase in signal intensity followed by a loss of intensity (heard as static or “white noise”).
Extended Response, continued
Base your answers to questions 15–17 on the information below. In each problem, show all of your work.
A double-slit apparatus for demonstrating interference is constructed so that the slits are separated by 15.0 µm. A first-order fringe for constructive interference appears at an angle of 2.25° from the zeroth-order (central) fringe.
15. What is the wave-length of the light?
Extended Response, continued
Base your answers to questions 15–17 on the information below. In each problem, show all of your work.
A double-slit apparatus for demonstrating interference is constructed so that the slits are separated by 15.0 µm. A first-order fringe for constructive interference appears at an angle of 2.25° from the zeroth-order (central) fringe.
15. What is the wave-length of the light?
Answer: 589 nm
Extended Response, continued
Base your answers to questions 15–17 on the information below. In each problem, show all of your work.
A double-slit apparatus for demonstrating interference is constructed so that the slits are separated by 15.0 µm. A first-order fringe for constructive interference appears at an angle of 2.25° from the zeroth-order (central) fringe.
16. At what angle would the third-order (m = 3) bright fringe appear?
Extended Response, continued
Base your answers to questions 15–17 on the information below. In each problem, show all of your work.
A double-slit apparatus for demonstrating interference is constructed so that the slits are separated by 15.0 µm. A first-order fringe for constructive interference appears at an angle of 2.25° from the zeroth-order (central) fringe.
16. At what angle would the third-order (m = 3) bright fringe appear?
Answer: 6.77º
Extended Response, continued
Base your answers to questions 15–17 on the information below. In each problem, show all of your work.
A double-slit apparatus for demonstrating interference is constructed so that the slits are separated by 15.0 µm. A first-order fringe for constructive interference appears at an angle of 2.25° from the zeroth-order (central) fringe.
17. At what angle would the third-order (m = 3) dark fringe appear?
Extended Response, continued
Base your answers to questions 15–17 on the information below. In each problem, show all of your work.
A double-slit apparatus for demonstrating interference is constructed so that the slits are separated by 15.0 µm. A first-order fringe for constructive interference appears at an angle of 2.25° from the zeroth-order (central) fringe.
17. At what angle would the third-order (m = 3) dark fringe appear?
Answer: 7.90º
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