chapter 22 wave optics
TRANSCRIPT
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© 2013 Pearson Education, Inc.
Chapter 22 Wave Optics
Chapter Goal: To understand and apply the wave model of light.
Slide 22-2
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© 2013 Pearson Education, Inc.
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Interference of Light
Wave Optics
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Diffraction depends on SLIT WIDTH: the smaller the width,
relative to wavelength, the more bending and diffraction.
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Diffraction depends on SLIT WIDTH: the smaller the width,
relative to wavelength, the more bending and diffraction.
Ray Optics assumes that λ<<d , where d is the diameter of the opening.
This approximation is good for the study of mirrors, lenses, prisms, etc.
Wave Optics assumes that λ~d , where d is the diameter of the opening.
This approximation is good for the study of interference.
Ray Optics: Ignores Diffraction
and Interference of waves!
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Geometric RAY Optics (Ch 23)
i r 1 1 2 2sin sinn n
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James Clerk Maxwell
1860s
Light is wave.
8
0
13.0 10 /
o
c x m s
Speed of Light in a vacuum:
186,000 miles per second
300,000 kilometers per second
3 x 10^8 m/s
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The Electromagnetic Spectrum
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Incandescent Light Bulb
Full Spectrum of Light
All frequencies excited!
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Visible Light
• Different wavelengths
correspond to
different colors
• The range is from red
(λ ~ 7 x 10-7 m) to
violet (λ ~4 x 10-7 m)
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Hydrogen Spectra
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Spontaneous Emission Transition Probabilities
Fermi’s Golden Rule
Transition probabilities of electrons correspond to the intensity of
light emission.
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Where does light actually come from?
Light comes from the
acceleration of
charges.
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Light is emitted when an electron in an
atom jumps between energy levels
either by excitation or collisions.
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Atoms are EM Tuning Forks
They are ‘tuned’ to particular
frequencies of light energy.
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Atomic Emission of Light
Each chemical element produces its own
unique set of spectral lines when it burns
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Light Emission
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Hydrogen Spectra
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If you pass white light through a prism,
it separates into its component colors.
R.O.Y. G. B.I.V long wavelengths short wavelengths
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If you pass white light through a prism,
it separates into its component colors.
R.O.Y. G. B.I.V
spectrum
long wavelengths short wavelengths
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Diffraction & Interference
Iridescence
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Dispersion via Diffraction
: sin , 0,1,2,3constructive d m m
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Radiation of Visible Sunlight
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Additive Primary Colors
Red, Green, Blue
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RGB Color Theory
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Additive Complementary Colors
Yellow, Cyan, Magenta
The color you have to add to get white light.
Red + Green = Yellow
Blue + Green = Cyan
Red + Blue = Magenta
Red + Blue + Green = White
White light – yellow light = ??
White light – red light = ??
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FYI: Mixing Colored Pigments
Subtractive Colors Pigments subtract colors from white light.
Yellow + Cyan = Green
Cyan + Magenta = Purple
Yellow + Magenta = Red
Yellow + Cyan + Magenta = Black
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Why are some materials colored?
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Why is a Rose Red?
Colored materials absorb certain colors that
resonate with their electron energy levels and
reject & reflect those that do not.
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Why is the Ocean Cyan?
White light minus cyan is red. Ocean water absorbs red.
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Shine cyan light on a red rose and
what color do you see?
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Shine cyan light on a red rose and
what color do you see?
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I am Watching YOU!!
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Human Retina
Sharp Spot: Fovea
Blind Spot: Optic Nerve
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Human Vision
An optical Tuning Fork
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Optical Antennae: Rods & Cones Rods: Intensity Cones: Color
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Double Slit is VERY IMPORTANT because it is evidence
of waves. Only waves interfere like this.
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If light were made of
hard bullets, there
would be no
interference pattern.
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In reality, light does show
an interference pattern.
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Light acts like a
wave going through
the slits but arrive at
the detector like a
particle.
Photons
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Particle Wave Duality
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E hf hp
c c
If photons can be particles, then
why can’t electrons be waves?
e
h
p
Electrons are STANDING WAVES in
atomic orbitals.
346.626 10h x J s
112.4 10e x m
1924: De Broglie Waves
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Double Slit for Electrons
shows Wave Interference!
Key to Quantum Theory!
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Interference pattern builds one
electron at a time.
Electrons act like
waves going through
the slits but arrive at
the detector like a
particle.
112.4 10e x m
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Limits of Vision
112.4 10e x m
Electron
Waves
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Electron Diffraction with Crystals
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Electron Microscope
Electron microscope picture of a fly.
The resolving power of an optical lens depends on the wavelength of
the light used. An electron-microscope exploits the wave-like
properties of particles to reveal details that would be impossible to see
with visible light.
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Loud Max
Quiet Min
Quiet Min
Loud Max
Intereference of 2-D
Coherent Sound Waves
0
2Phase Difference at P: , 0r
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Intereference of 2-D
Coherent Light Waves
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Young’s Double Slit
• To observe interference in light waves, the following two conditions must be met:
1) The sources must be coherent
• They must maintain a constant phase with respect to each other
2) The sources should be monochromatic
• Monochromatic means they have a single wavelength
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Intereference of 2-D
Coherent Light Waves
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Double Slit Interference
Dependence on Slit Separation
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Derive Fringe Equations
• Maxima: bright fringes
• Minima: dark fringes
sin
, ,
bright ( 0 1 2 )
d θ mλ
λLy m m
d
sin
, ,
dark
1
2
1( 0 1 2 )
2
d θ m λ
λLy m m
d
“m” is the fringe order.
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Fig. 37-3, p. 1086
2Phase Difference at P: r
Constructive : 2 , , 0,1,2,3...
1Destructive : (2 1) , ( ), 0,1,2,3...
2
m r m m
m r m m
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Fig. 37-5, p. 1087
2Phase Difference at P: r
Constructive : 2 , , 0,1,2,3...
1Destructive : (2 1) , ( ), 0,1,2,3...
2
m r m m
m r m m
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Derive Fringe Equations
• Maxima: bright fringes
• Minima: dark fringes
sin
, ,
bright ( 0 1 2 )
d θ mλ
λLy m m
d
sin
, ,
dark
1
2
1( 0 1 2 )
2
d θ m λ
λLy m m
d
“m” is the fringe order.
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Red light (=664nm) is used in Young’s double slit as
shown. Find the distance y on the screen between the
central bright fringe and the third order bright fringe.
Problem
bright ( 0 1 2 ), ,λL
y m md
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Measuring the wavelength of light
A double-slit interference
pattern is observed on a
screen 1.0 m behind two
slits spaced 0.30 mm apart.
9 bright fringes span a
distance of 1.7cm. What is
the wavelength of light?
y L
d Fringe Spacing.
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Example 22.2 Measuring the Wavelength of Light
Slide 22-42
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Double Slit PreLab
A Young’s interference experiment is
performed with monochromatic light. The
separation between the slits is 0.500 mm,
and the interference pattern on a screen
3.30 m away shows the first side
maximum 3.40 mm from the center of the
pattern. What is the wavelength?
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Double Slit
The image shows the light intensity on a
screen behind a double slit. The slit
spacing is 0.20 mm and the wavelength of
light is 600 nm. What is the distance from
the slits to the screen? bright ( 0 1 2 ), ,
λLy m m
d
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A laboratory experiment produces a double-slit interference pattern on a screen.
The point on the screen marked with
a dot is how much farther from the left slit than from the
right slit?
A. 1.0 .
B. 1.5 .
C. 2.0 .
D. 2.5 .
E. 3.0 .
QuickCheck 22.3
Slide 22-35
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A laboratory experiment produces a double-slit interference pattern on a screen.
The point on the screen marked with
a dot is how much farther from the left slit than from the
right slit?
A. 1.0 .
B. 1.5 .
C. 2.0 .
D. 2.5 .
E. 3.0 .
QuickCheck 22.3
Slide 22-36
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A laboratory experiment produces a double-slit interference pattern on a screen. If
the screen is moved farther away
from the slits, the fringes will be
A. Closer together.
B. In the same positions.
C. Farther apart.
D. Fuzzy and out of focus.
QuickCheck 22.4
Slide 22-37
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A laboratory experiment produces a double-slit interference pattern on a screen. If
the screen is moved farther away
from the slits, the fringes will be
A. Closer together.
B. In the same positions.
C. Farther apart.
D. Fuzzy and out of focus.
QuickCheck 22.4
Slide 22-38
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A laboratory experiment produces a double-slit interference pattern on a screen. If green light is used, with everything else the same, the bright fringes will be
QuickCheck 22.5
A. Closer together
B. In the same positions.
C. Farther apart.
D. There will be no fringes because the conditions for interference won’t be satisfied.
Slide 22-44
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A laboratory experiment produces a double-slit interference pattern on a screen. If green light is used, with everything else the same, the bright fringes will be
QuickCheck 22.5
d y
L and green light has a shorter wavelength.
A. Closer together.
B. In the same positions.
C. Farther apart.
D. There will be no fringes because the conditions for interference won’t be satisfied.
Slide 22-45
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http://web.phys.ksu.edu/vqmorig/programs/java/makewave/Slit/vq_mws.htm
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Intensity of Light Waves
E = Emax cos (kx – ωt)
B = Bmax cos (kx – ωt)
max
max
E ω Ec
B k B
2 2
max max max maxav
2 2 2I
o o o
E B E c BS
μ μ c μ
I 2
m axE
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Intensity Distribution Resultant Field
• The magnitude of the resultant electric field
comes from the superposition principle
– EP = E1+ E2 = Eo[sin ωt + sin (ωt + φ)]
• This can also be expressed as
– EP has the same frequency as the light at the slits
– The amplitude at P is given by 2Eo cos (φ / 2)
• Intensity is proportional to the square of the
amplitude:
• The intensity at P is 4 times
one source.
2 cos sin2 2
P o
φ φE E ωt
cos
2 2 242
P P o
φI E E
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Amplitude is twice as big
But intensity is proportional to
the amplitude SQUARED so
the Intensity is four times as
big as the source. This is
energy being conserved! The
light energy is redistributed
on the screen.
2 cos sin2 2
P o
φ φE E ωt
cos
2 2 242
P P o
φI E E
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WARNING! We are going to ignore the intensity
drop due to distance in inverse square law. We
assume that the amplitude remains constant over
the short distances considered. We will only
considering the intensity change due to
interference! This is not a bad approximation
using lasers as sources.
2 2
W
4 m
PI
r
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Light Intensity: Ignoring Diffraction
• The interference
pattern consists of
equally spaced
fringes of equal
intensity
• This result is valid
only if L >> d and for
small values of θ
2 2
max max
sin cos cosI I I
πd θ πdy
λ λL
2
max cos ( / 2)I I
2Phase Difference at P: r
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Intensity
In a double-slit experiment, the distance between the slits is 0.2 mm, and the distance to the screen is 150 cm. What wavelength (in nm) is needed to have the intensity at a point 1 mm from the central maximum on the screen be 80% of the maximum intensity?
a. 900
b. 700
c. 500
d. 300
e. 600
2 2
max max
sin cos cosI I I
πd θ πdy
λ λL
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Double Slit Intenisty
2 2
max max
sin cos cosI I I
πd θ πdy
λ λL
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Double Slit Interference Reality
Combination of Single and Double
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Double Slit Interference Reality
Combination of Single and Double
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Diffraction depends on SLIT WIDTH: the smaller the width,
relative to wavelength, the more bending and diffraction.
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Single Slit Interference Is called
Diffraction
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Single Slit
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Light interferes with itself
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Fraunhofer Diffraction: screen is
far away, approximate plane
waves and parallel rays.
Fresnel Diffraction: Screen is
close and curvature of wave fronts
complicates the analysis
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Single Slit Diffraction
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Single Slit Diffraction
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r
When the path length differs by half a
wavelength then the rays will interfere
destructively. For Rays 1 & 3: sin
2 2
ar
Single Slit Diffraction
a
Dark fringe: sin 1, 2, 3,...m ma
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Dark fringe: sin 1, 2, 3,...m ma
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Dark fringe: sin ma
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Single Slit Problem
A narrow slit is illuminated with sodium yellow light
of wavelength 589 nm. If the central maximum
extends to ±30, how wide is the slit?
a. 0.50 mm
b. 2.2 10–6 m
c. 3.3 10–5 m
d. 1.18 µm
e. 5.89 µm
Dark fringe: sin ma
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Width of the Central Maximum
2w y
Dark fringe: sin 0,1,2,3,...m ma
tanm my L
y: the distance from the
center of the central
maximum to the fringe m
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If the incident light has =690nm (red) and a = 4 x 10-6m,
find the width of the central bright fringe when the screen is 0.4m away.
Single Slit Problem
Dark fringe: sin 0,1,2,3,...m ma
2w y
tanm my L
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Single Slit Intensity
• The intensity can be expressed as
• Imax is the intensity at θ = 0
– This is the central maximum
• Minima occur at
2
max
sin sin
sin I I
πa θ λ
πa θ λ
darkdark
sin or sin
πa θ λmπ θ m
λ a
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Compare Fringe Equations for
Single and Double Slits
: sin , ,
sin , ,
maxima ( 0 1 2 )
1minima: ( 0 1 2 )
2
d θ mλ m
d θ m λ m
minima: sin , 1, 2, 3,...darka m m
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Combined Effects Interference maximum coincides with the first diffraction minimum.
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Two-Slit Diffraction Patterns,
Maxima and Minima • To find which interference
maximum coincides with the first diffraction minimum
– The conditions for the first interference maximum
• d sin θ = mλ
– The conditions for the first diffraction minimum
• a sin θ = λ
sin
sin
d θ mλ dm
a θ λ a
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Intensity of Two-Slit Diffraction
Chapter 38 in Serway
Section 38.2
2
2
max
sin sin sin cos
sin
/I I
/
πa θ λπd θ
λ πa θ λ
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Hyperphysics
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Hyperphysics
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Hyperphysics
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Hyperphysics
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Multiple Slits: Diffraction Gratings
Section 37.3
For N slits,
the intensity
of the
primary
maxima is
N2 times
greater than
that due to
a single slit.
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Dispersion via Diffraction
: sin , 0,1,2,3constructive d m m
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Diffraction Gratings
: sin , 0,1,2,3constructive d m m
Note: The greater the wavelength, the greater the angle.
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A mixture of violet light (410 nm in vacuum) and red light (660
nm in vacuum) fall on a grating that contains 1.0 x104 lines/cm.
For each wavelength, find the angle and the distance from the
central maximum to the first order maximum.
: sin , 0,1,2,3constructive d m m
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Diffraction Grating Problem
White light is spread out into spectral hues by a diffraction grating. If the grating has 1000 lines per cm, at what angle will red light (l = 640 nm) appear in first order?
a. 14.68
b. 7.35
c. 17.73
d. 3.67
e. 1.84
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Resolving Power of a Diffraction
Grating • For two nearly equal wavelengths, λ1 and λ2,
between which a diffraction grating can just barely distinguish, the resolving power, R, of the grating is defined as
• Therefore, a grating with a high resolution can distinguish between small differences in wavelength
2 1
λ λR
λ λ λ
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Resolving Power of a Diffraction
Grating
• The resolving power in the mth-order
diffraction is R = Nm
– N is the number of slits
– m is the order number
• Resolving power increases with increasing
order number and with increasing number
of illuminated slits
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Grating Resolution
Determine the number of grating lines necessary to resolve the 589.59 nm and 589.00 nm sodium lines in second order.
a. 999
b. 680
c. 500
d. 340
e. 380
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Circular Aperature
Dark fringe: sin 0,1,2,3,...m mD
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Diffraction of a Penny
Fig 38-3, p.1207
Central Bright Spot: Poisson Spot
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Light from a small source passes by the edge of an opaque object
and continues on to a screen. A diffraction pattern consisting of
bright and dark fringes appears on the screen in the region above
the edge of the object.
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Resolution
• The ability of optical systems to distinguish between closely spaced objects is limited because of the wave nature of light
• If two sources are far enough apart to keep their central maxima from overlapping, their images can be distinguished
– The images are said to be resolved
• If the two sources are close together, the two central maxima overlap and the images are not resolved
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Fig 38-13, p.1215
Diffraction Resolution
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Resolving Power
min
1.22
Rayleigh Criterion
D
The diffraction limit: two images are just resolvable when the center
of the diffraction pattern of one is directly over the first minimum of
the diffraction pattern of the other.
D: Aperture Diameter
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Standing back from a Georges Seurat painting, you can cannot resolve
the dots but a camera, at the same distance can. Assume that light
enters your eyes through pupils that have diameters of 2.5 mm and
enters the camera through an aperture with diameter of 25 mm.
Assume the dots in the painting are separated by 1.5 mm and that the
wavelength of the light is 550 nm in vacuum. Find the distance at
which the dots can just be resolved by a) the camera b) the eye.
Georges Seurat’s 1884
pointillist masterpiece
A Sunday on La Grand
Jatte
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Michelson Interferometer
• A ray of light is split into two rays by the mirror Mo – The mirror is at 45o to the incident
beam
– The mirror is called a beam splitter
• It transmits half the light and reflects the rest
• After reflecting from M1 and M2, the rays eventually recombine at Mo and form an interference pattern
• The fringe pattern shifts by one-half fringe each time M1 is moved a distance λ/4
• The wavelength of the light is then measured by counting the number of fringe shifts for a given displacement of M1
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Michelson Interferometer
The interference changes from a max to a min and back to a max every time L increases by half a
wavelength. The number of maxima that appear as the Mirror shifts a length
/ 2
Lm
:L
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Interferometer Problem
10. Monochromatic light is beamed into a
Michelson interferometer. The movable
mirror is displaced 0.382 mm,
causing the interferometer pattern to
reproduce itself 1 700 times. Determine the
wavelength of the light. What color
is it?
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James Clerk Maxwell
1860s
Light is wave. The medium is the Ether.
8
0
13.0 10 /
o
c x m s
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Measure the Speed of the Ether
Wind
The Luminiferous Aether was imagined by physicists since
Isaac Newton as the invisible "vapor" or "gas aether" filling
the universe and hence as the carrier of heat and light.
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Rotate arms to produce interference fringes and find
different speeds of light caused by the Ether Wind, due to
Galilean Relativity: light should travel slower against the
Ether Wind. From that you can find the speed of the wind.
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http://www.youtube.com/watch?v=4KFMeKJySwA&feature=related
http://www.youtube.com/watch?v=XavC4w_Y9b8&feature=related
http://www.youtube.com/watch?v=ETLG5SLFMZo
http://www.youtube.com/watch?v=Z8K3gcHQiqk&feature=related
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Michelson-Morely
Experiment
1887 The speed of light is independent of the motion and
is always c. The speed of the Ether wind is zero.
OR….
Lorentz Contraction
The apparatus shrinks by a factor :
2 21 / v c
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Clocks slow down
and rulers shrink
in order to keep the
speed of light the
same for all
observers!
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Time is Relative!
Space is Relative!
Only the SPEED
OF LIGHT is
Absolute!
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On the Electrodynamics of Moving Bodies
1905
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LIGO in Richland, Washington
http://www.youtube.com/watch?v=RzZgFKoIfQI&feature=related
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LISA
http://www.youtube.com/watch?v=DrWwWcA_Hgw&feature=related
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Space Shuttle Resolution
What, approximately, are the dimensions of the smallest object on Earth that the astronauts can resolve by eye at 200 km height from the space shuttle? Assume l = 500 nm light and a pupil diameter D = 0.50 cm. Assume eye fluid has an average n = 1.33.
a. 150 m
b. 100 m
c. 250 m
d. 25 m
e. 18 m
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Interference in Thin Films When reflecting off a medium of greater refractive index, a
light wave undergoes a phase shift of ½ a wavelength.
Wave 1 undergoes a phase shift of 180 degrees.
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From Low to
High, a phase
change of pi!
From High to
Low, a phase
change? NO!
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Interference in Thin Films
• The wavelength of ray 1 in the film is /n
• For constructive interference
2t = (m + ½) /n (m = 0, 1, 2 …)
This takes into account both the difference in optical path length for the two rays and the 180° phase change
• For destructive interference
2t = m/n (m = 0, 1, 2 …)
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A thin film of gasoline floats on a puddle
of water. Sunlight falls almost
perpendicularly on the film and reflects
into your eyes a yellow hue. Interference
in the the thin gasoline film has eliminated
blue (469nm in vacuum) from the
reflected light. The refractive indices of
the blue light in gasoline and water are
1.40 and 1.33 respectively.
Determine the minimum nonzero
thickness of the film.
What color do you see?
Problem: Thin Films
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Thin Film Interference
The light reflected from a soap bubble
(n = 1.40) appears red ( = 640 nm). What is the minimum thickness (in nm)?
a. 124
b.104
c. 114
d.134
e. 234
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Interference of Light
Wave Optics