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Transcript
Physics 2102
Jonathan Dowling
Lecture 25: THU 22 APR 2010
Ch. 35: Interference
Christian Huygens
1629-1695
The Lunatic Fringe:
The waves arriving at the screen from
the two slits will interfere constructively
or destructively depending on the different
length they have travelled. L  d sin 
Constructi ve :
Destructiv e :
L  m  m  0,1,2... integer
1
L  (m  )  m  0,1,2... integer
2
Constructi ve : d sin   m
Maximum fringe at =0, (central maxima)
other maxima at
 m 
  arcsin 

d


Similarly for dark fringes: d sin = (m+1/2) 
The Return
Of the Phasor!
 
  
L   d sin 
 
 
  
Phase Difference
2=360°
=180°
 
E  E1  E2  2 E0 cos   2 E0 cos  

I
E2
 
 2  4 cos 2  
I 0 E0

Example
Red laser light (=633nm) goes through two slits 1cm apart, and
produces a diffraction pattern on a screen 55cm away. How far
apart are the fringes near the center?
If the fringes are near the center, we can use
sin  ~ , and then
m=dsin~d => =m/d is the angle for each
maximum (in radians)
= l/d =is the “angular separation”.
The distance between the fringes is then
x=L=L/d=55cmx633nm/1cm=35 mm
For the spacing to be 1mm, we need d~ L/1mm=0.35mm
Example
In a double slit experiment, we can measure the wavelength of the
light if we know the distances between the slits and the angular
separation of the fringes.
If the separation between the slits is 0.5mm and the first order
maximum of the interference pattern is at an angle of 0.059o from
the center of the pattern, what is the wavelength and color of the
light used?
d sin=m =>
=0.5mm sin(0.059o)
= 5.15 10–7m=515nm ~ green

Example
A double slit experiment has a screen 120cm away from the slits,
which are 0.25cm apart. The slits are illuminated with coherent
600nm light. At what distance above the central maximum is the
average intensity on the screen 75% of the maximum?
I/I0=4cos2/ ; I/Imax=cos2/ =0.75 => =2cos–1 (0.75)1/2=60o=/3 rad
=(2d/)sin => = sin-1(/2d)0.00o40 mrad (small!)
y=L48mm
Radio Waves
Two radio towers, separated by 300 m as shown the figure, broadcast
identical signals at the same wavelength.
A radio in the car, which traveling due north, receives the signals. If
the car is positioned at the second maximum, what is the wavelength
of the signals? Where will the driver find a minimum in reception?
dsin=m =>
= dsin/2
sin = 400/(4002+10002)1/2=0.37
=55.7m
“Dark” fringes: dsin=(m+1/2)
sin=(m+1/2)/d=2.5x55.7m/300m
=0.464 =>= 28o
tan=y/1000m => y=1000m x tan(28o)=525m
Interference: Example
A red light beam with wavelength =0.625mm travels through glass (n=1.46) a
distance of 1mm. A second beam, parallel to the first one and originally in phase
with it, travels the same distance through sapphire (n=1.77).
•How many wavelengths are there of each
beam inside the material?
In glass, g=0.625mm/1.46= 0.428 mm and Ng=D/ g=2336.45
In sapphire, s=0.625mm/1.77= 0.353 mm (UV!) and Ns=D/ s=2832.86
•What is the phase difference in the beams when they come out?
The difference in wavelengths is Ns–Ng=496.41.
Each wavelength is 360o, so N=496.41 means =Nx360o=0.41x360o=148o
•How thick should the glass be so that the beams are exactly out of phase at the
exit (destructive interference!)
N=D/ s- D/ g= (D/ )(n2–n1)=0.31 (D/ )=m+1/2
A thickness D=(m+0.5) 2.02 mm would make the waves OUT of phase.
For example, 1.008 mm makes them in phase, and 1.010 mm makes them OUT of
phase.
Thin Film Interference:
The patterns of colors that one sees
in oil slicks on water or in bubbles
is produced by interference of the
light bouncing off the two sides of
the film.
To understand this we
need to discuss the
phase changes that
occur when a wave
moves from one medium
to the another where the
speed is different. This
can be understood with
a mechanical analogy.
Reflection, Refraction and Changes of Phase:
Consider an UP pulse moving in a rope, that reaches a juncture
with another rope of different density. A reflected pulse is generated.
The reflected pulse is also UP if the
speed of propagation in the rope of the
right is faster than on the left. (Low
impedance.)
The reflected pulse is DOWN if the speed of
propagation in the right is slower than on
the left. (High impedance.)
The extreme case of ZERO speed on the right corresponds to a rope
anchored to a wall. (Highest impedance.)
If we have a wave instead of a pulse “DOWN” means 180
degrees OUT of phase, and UP means 360° or IN PHASE.
Thin Films
First reflected light
ray comes from first
interface, second
from second. These
rays interfere with
each other.
n1
n2
n3
How they interfere will depend on the relative indices of refraction.
In the example above the first ray suffers a 180 degree phase change
(1/2 a wavelength) upon reflection. The second ray does not change
phase in reflection, but has to travel a longer distance to come back up.
The distance is twice the thickness of the layer of oil.
For constructive interference the distance 2L must therefore be a
half-integer multiple of the wavelength, i.e. 0.5 , 1.5 ,…,(0.5+2n).
odd number 

In phase : 2 L 

Anti - phase : 2 L  integer 
2
n2
n2
Thin Films: Soap Bubbles
If the film is very thin, then the interference is totally dominated by the
180° phase shift in the reflection.
At the top the film is thinnest (due
to gravity it lumps at the bottom),
so one sees thefilm dark at the top.
180°
Air: n=1
0°
Soap: n>1
Air
This film is illuminated with white light, therefore we see fringes of
different colors corresponding to the various constructive interferences
of the individual components of the white light, which change as we
go down. The thickness increases steeply as we go down, which makes
the width of the fringes become narrower and narrower.
Reflective Coatings
To make mirrors that reflects light of only a given wavelength, a coating of a specific
thickness is used so that there is constructive interference of the given wavelength.
Materials of different index of refraction are used, most commonly MgFe2 (n=1.38) and
CeO2 (n=2.35), and are called “dielectric films”. What thickness is necessary for
reflecting IR light with =1064nm?
n=2.35
n=1.38
First ray: =180deg=
Second ray: =2L(2/(/n))=
=> L= Ceo2/4(/n)/4113nm
Third ray? If wafer has the same
thickness (and is of the same material),
=4L(2/(/n)=2: destructive!
Choose MgFe2 wafer so that
(2n1L1+2n2L2) (2/)=  2n2L2 (2/)=3
> L2= /n2  386 nm
We can add more layers to keep reflecting the light, until no
light is transmitted: all the light is either absorbed or
reflected.
Anti-Reflective Coatings
Semiconductors such a silicon are used
to build solar cells. They are coated
with a transparent thin film, whose
index of refraction is 1.45, in order to
minimize reflected light. If the index of
refraction of silicon is 3.5, what is the minimum width of the coating
that will produce the least reflection at a wavelength of 552nm?
n=1.45
Both rays undergo 180 phase changes at
reflection, therefore for destructive
interference (no reflection), the distance
travelled (twice the thickness) should be
equal to half a wavelength in the coating
2L 

n
 L  95.1nm
Anti-Reflective Coatings
Radar waves have a wavelength of 3cm.
Suppose the plane is made of metal
(speed of propagation=0, n is infinite and
Stealth Fighter
reflection on the polymer-metal surface
therefore has a 180 degree phase change).
The polymer has n=1.5. Same calculation as in previous example
gives,

3cm
L

 0.5cm
4n 4 1.5
On the other hand, if one coated a plane with the same polymer
(for instance to prevent rust) and for safety reasons wanted to maximize
radar visibility (reflective coating!), one would have

3cm
L

 1cm
2n 2 1.5
Michelson Interferometers:
As we saw in the previous example, interference is a spectacular way
of measuring small distances (like the thickness of a soap bubble), since
we are able to resolve distances of the order of the wavelength of the
light (for instance, for yellow light, we are talking about 0.5 of a
millionth of a meter, 500nm). This has therefore technological
applications.
In the Michelson interferometer, light from a
source (at the left, in the picture) hits a semiplated mirror. Half of it goes through to the right
and half goes upwards. The two halves are
bounced back towards the half plated mirror,
interfere, and the interference can be seen by the
observer at the bottom. The observer will see
light if the two distances travelled d1 and d2 are
equal, and will see darkness if they differ by half
a wavelength.
Michelson-Morley Experiment
Michelson won the Nobel prize in 1907, "for his
optical precision instruments and the spectroscopic
and metrological investigations carried out with
their aid"
"The interpretation of these results is that there is no displacement of the
interference bands. ... The result of the hypothesis of a stationary ether is thus
shown to be incorrect." (A. A. Michelson, Am. J. Sci, 122, 120 (1881))
The largest Michelson interferometer in the world is in Livingston, LA,
in LSU owned land (it is operated by a project funded by the National
Science Foundation run by Caltech and MIT, and LSU collaborates in
the project).
http://www.ligo-la.caltech.edu
Mirrors are suspended
with wires and will move
detecting ripples in
the gravitational field due
to astronomical events.
Gravitational Waves Interferometry:
an International Dream
GEO600 (British-German)
Hannover, Germany
TAMA (Japan)
Mitaka
LIGO (USA)
Hanford, WA and Livingston, LA
AIGO (Australia),
Wallingup Plain, 85km north of Perth
VIRGO (French-Italian)
Cascina, Italy