1. Interference Applications Physics 202 Professor Lee Carkner Lecture 25

2. PAL #23 Interference  Light with = 400 nm passing through n=1.6 and n=1.5 material   N = (L/ )(  n)  L =  N /  n = (5.75)(400)/(0.1) = 23000 nm  Compare to L = 2.6X10 -5 m   N = (2.6X10 -5 )(0.1)/(400X10 -9 ) = 6.5  6.5 is total destructive interference and so the above situation is brighter (5.75 )

3. What directions will the beam be bent towards as it enters A, B and C? a)Up, up, up b)Down, down, down c)Up, down, up d)Up, up, down e) Down, up, down ABC n=1 n=1.4n=1.3n=1.5

4. Rank the 3 materials by the speed of light in them, greatest first. a)A, B, C b)B, C, A c)C, A, B d)A, C, B e)Speed is the same in all ABC n=1 n=1.4n=1.3n=1.5

5. What happens to the distance between the fringes if the distance between the slits increases? a)Increases b)Decreases c)Stays the same

6. What happens to the distance between the fringes if the light is switched from red to green? a)Increases b)Decreases c)Stays the same

7. What happens to the distance between the fringes if the entire apparatus in submerged in a clear liquid? a)Increases b)Decreases c)Stays the same

8. Orders   At the center is the 0th order maxima, flanked by the 0th order minima, next is the 1st order maxima etc.  The orders are symmetric e.g. the 5th order maxima is located both to the left and the right of the center at the same distance  The intensity varies sinusoidally between minima and maxima

9. Intensity of Interference Patterns  How bright are the fringes?   The phase difference is related to the path length difference and the wavelength and is given by:  = (2  d sin  ) /  Where d is the distance between the slits, and  is the angle to the point in question   is in radians

10. Intensity  The intensity can be found from the electric field vector E: I  E 2 I = 4 I 0 cos 2 (½  )   For any given point on the screen we can find the intensity if we know ,d, and I 0  The average intensity is 2I 0 with a maximum and minimum of 4I 0 and 0

11. Intensity Variation

12. Thin Film Interference   Camera lenses often look bluish   Light that is reflected from both the front and the back of the film has a path length difference and thus may also have a phase difference and show interference

13. Reflection Phase Shifts   The phase shift depends on the relative indices of refraction  If light is incident on a material with lower n, the phase shift is 0 wavelength  Example:  If light is incident on a material with higher n, the phase shift is 0.5 wavelength  Example:  The total phase shift is the sum of reflection and path length shifts

14. Reflection and Thin Films   Since n film > n air and n glass > n film   Example: optical antireflection coatings   Since n film > n air and n air < n film  Have to add 0.5 wavelength shift to effects of path length difference  Example: soap bubble

15. Path Length and Thin Films  For light incident on a thin film, the light is reflected once off of the top and once off of the bottom   If the light is incident nearly straight on (perpendicular to the surface) the path length difference is 2 times the thickness or 2L  Don’t forget to include reflection shifts

16. Reflection and Interference  What kind of interference will we get for a particular thickness?   The wavelength of light in the film is equal to: 2 = /n 2  For an anti-reflective coating (no net reflection shift), the two reflected rays are in phase and they will produce destructive interference if 2L is equal to 1/2 a wavelength 2L = (m + ½) ( /n 2 ) -- dark film  2L = m ( /n 2 ) -- bright film

17. Interference Dependencies  For a film in air (soap bubble) the equations are reversed   Soap film can appear bright or dark depending on the thickness   Since the interference depends also on  soap films of a particular thickness can produce strong constructive interference at a particular  This is why films show colors

18. Color of Film  What color does a soap film (n=1.33) appear to be if it is 500 nm thick?  We need to find the wavelength of the maxima: 2L = (m + ½) ( /n)  = [(2) (500nm) (1.33)] / (m + ½)  = 2660 nm, 887 nm, 532 nm, 380 nm …  Only 532 nm is in the visible region and is green 

19. Next Time  Read: 36.1-36.6  Homework: Ch 35, P: 40, 53, Ch 36, P: 2, 17

20. Interference: Summary  Interference occurs when light beams that are out of phase combine  The interference can be constructive or destructive, producing bright or dark regions  The type of interference can depend on the wavelength, the path length difference, or the index of refraction  What types of interference are there?

21. Reflection  Depends on: n  Example: thin films  Equations: n 1 > n 2 -- phase shift = 0 antireflective coating n 1 < n 2 -- phase shift = 0.5 soap bubble

22. Path Length Difference  Depends on: L and  Example: double slit interference  Equations:  d sin  = m -- maxima  d sin  = (m + ½) -- minima

23. Different Index of Refraction  Depends on: L,, n  Example: combine beams from two media  Equations:  N 2 - N 1 = (L/ )(n 2 -n 1 )