wedge shaped film
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Interference -Wedge shaped film
WÜAgAi|á{ãtÅWÜAgAi|á{ãtÅWÜAgAi|á{ãtÅWÜAgAi|á{ãtÅDepartment of Engineering Physics
By
INTERFERENCE LECTURE BY DR.T.VISHWAM
Department of Engineering PhysicsGITAM -HYD
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Variable Thickness (Wedge shaped) films
�Film with zero thickness at one end, progressively increasing to a particular thickness at the other end.
�Wedge angle very small, fraction of a degree.
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�When a parallel beam of monochromatic lightilluminates the wedge from above
�the rays reflected from the two bounding surfaces willnot be parallel and diverge from a point near the film.
INTERFERENCE LECTURE BY DR.T.VISHWAM
� Path difference between the reflected rays from thelower and upper surfaces of the air film varies along itslength due to variation in film thickness.
�Alternate bright and dark fringes on its top surface.
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INTERFERENCE LECTURE BY DR.T.VISHWAM
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INTERFERENCE LECTURE BY DR.T.VISHWAM
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�BC and DE reflected from the top and bottom of the air film are coherent, derived from the same ray AB (division of amplitude)
�The rays are very close if the thickness of the film is of the order of wavelength of light.
INTERFERENCE LECTURE BY DR.T.VISHWAM
is of the order of wavelength of light.
�Interference of rays --- fringes depending on the phase difference for small air film thickness
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�Thickness of the glass plate large as compared to the wavelength of incident light.
2cos2 λrµt∆ −=
�Optical difference between BC and DE.
INTERFERENCE LECTURE BY DR.T.VISHWAM
2cos2 rµt∆ −=
�where 2
λ is the abrupt phase change of on reflectionfrom the boundary of air to glass interface.(Point F)
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�For Maxima λm=∆
�Path difference 2
cos2λµ −=∆ rt
�For bright fringe λµ +=
INTERFERENCE LECTURE BY DR.T.VISHWAM
�For bright fringe 2
)12(cos2λµ += mrt
�For minima 2
)12(λ+=∆ m
�For dark fringe λµ mrt =cos2
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Assuming normal incidence cos r = 1,
thickness of film at A = t1
then at A, a dark fringe is formed (say)
Next dark fringe occurs at C where, the thickness
CL = t , then at C,
)1(2 1 λµ mt =
)2()1(2 λµ += mt
INTERFERENCE LECTURE BY DR.T.VISHWAM
CL = t2 , then at C, )2()1(2 2 λµ += mt
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� Subtracting (1) from (2)
λλµ
λµ
)(2,
)(,
)(2
12
12
BC
BCTherefore
BCttBut
tt
=
==−
=−
INTERFERENCE LECTURE BY DR.T.VISHWAM
� AB is the distance between successive dark
fringes (bright fringes also)→ fringe width (β)
θθ
µ
tan
,
2
ABBCand
CABangleABCFrom
BC
==∆
=
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Then
For small values of θ , tanθ ≈ θ
Therefore,
µθλβ
2=
θµλβtan2
=
INTERFERENCE LECTURE BY DR.T.VISHWAM
From the above equation fringe width β is constant for given wedge angle.
As θ increases, β decreases. ( fringes move closer).
As the value of θ, approaches 900, the interference pattern vanishes.
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�Fringe at Apex is Dark
•At Apex, the two glass slides are in contact with each other. • Therefore, the thickness t ≈ 0•The optical path difference then becomes
•It implies that the path difference of or a phase difference
220
22
λλλµ −=−=−=∆ t
λ
INTERFERENCE LECTURE BY DR.T.VISHWAM
•It implies that the path difference of or a phase difference of
• π occurs between the reflected waves at the edge.
•The two waves interfere destructively.
•Hence the fringe at the apex is dark
2
λ
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�Straight and parallel fringes
�Each fringe pattern produced by the interference of rays reflected from the section of the wedge have same thickness.
Locus of points having same thickness lie along lines parallel to the contact edge →Straight and parallel edges
�Equidistant fringes
INTERFERENCE LECTURE BY DR.T.VISHWAM
�Equidistant fringes
since λ and θ are constants, β is a constant for a given wedge angle (hence equidistant fringes)
�Localized fringesFringes formed close to the top surface of wedge.
θλβ2
≈
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�Fringes of equal thickness
For films of thickness≈ few λ, the rays from various parts of thefilm have same inclination (app.)
∆ between the overlapping waves changes mainly due to the changein thickness→ Fringes due to variation of film thickness
Each fringe will be the locus of points of samethickness. Hence
INTERFERENCE LECTURE BY DR.T.VISHWAM
Each fringe will be the locus of points of samethickness. Hencecalled thefringes of equal thickness.
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Determination of Wedge AngleUsing microscopes the positions of dark fringes at two distant points Q and R , OQ = x1, OR = x2Thickness of the wedge t1 at Q, t2 at RFor dark fringes at Q
For small θ,λµ mt =12
θθ 111 tan xxt ≅=
INTERFERENCE LECTURE BY DR.T.VISHWAM
Therefore,
For dark fringe at R,
where N = number of dark fringes lying between Q and R.
Subtracting gives
θθ 111 tan xxt ≅=
λθµ mx =12
λθµ )(2 2 Nmx +=
λθµ Nxx =− )(2 12
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)(2 12 xx
N
−=
µλθ
Therefore
For air
So
1=µ
)(2 12 xx
N
−= λθ
INTERFERENCE LECTURE BY DR.T.VISHWAM
�Determination of the thickness of the spacer
Spacer forms the wedge shaped air film between the glass slidesFor thickness t of the spacer
where l = length of the air wedge
θθ llt ≅= tan
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Since
Therefore
�Fizeau Fringes
)(2 12 xx
N
−= λθ
)(2 12 xx
lNt
−= λ
INTERFERENCE LECTURE BY DR.T.VISHWAM
Parallel beam of light incident perpendicular on a film of variablethickness� dark and bright fringes in reflected light� equal opticalthickness of fringes� each line corresponds to lines of equal opticalthickness� localized at the top of the film� Fizeau Fringes.Contours following lines of equal optical thickness are seen if the areais large.The fringes may also be obtained in case of thick films for small source.
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�Anti reflection films [Anti reflection coatings (AR)]
Part of light incident on a glass surface is reflected and that amount is subtracted from the transmitted light.
For large number of reflections, quality of image produced will be poor.
Alexander Smakula (1935) discovered that reflection from a surface can be reduced by coating the surface with a thin transparent dielectric film.
INTERFERENCE LECTURE BY DR.T.VISHWAM
be reduced by coating the surface with a thin transparent dielectric film.
Antireflection coating (AR) or non reflecting films� transparent film coated on a surface to suppress surface reflections
�ConditionsPhase condition -wave reflected from the top and bottom surfaces of the thin films are in opposite phase. Overlapping leads to destructive interference Amplitude Condition – Waves have equal amplitude
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INTERFERENCE LECTURE BY DR.T.VISHWAM
Antireflection Antireflection Antireflection Antireflection
coatingcoatingcoatingcoating
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Thickness- t, Refractive index of film material = fµ
Phase of beams 1 and 2 reflected from the top and bottom surfaces of the thin films should be 180º out of phase.
∆ between 1 and 2 = , n = 0, 1, 2…2)12(
λ+n
22cos2
λλµ −−=∆ rtf
INTERFERENCE LECTURE BY DR.T.VISHWAM
First � π change at the top surface of film (air to film boundary)Second � π change at the lower surface of AR film (film to glass boundary)
Assuming normal incidence of light i.e. cos r = 1
22f
tt ff µλµ 22 =−=∆
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Addition or subtraction of a full wave ( ) does not affect the phase.
Rays 1 and 2 interface destructively if
Therefore
λ
2)12(
λ+=∆ n
2)12(2
λµ += ntf
INTERFERENCE LECTURE BY DR.T.VISHWAM
For the film to be transparent, the thickness of the film should be minimumwhich is possible for n = 0.
Therefore 2µf tmin = λ/2
or ttttminminminmin = λ/4µ= λ/4µ= λ/4µ= λ/4µffff
2
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� Optical thickness of Antireflection coating should beλ/4. Suchquarter wavelength components suppress the reflections and allow thelight to pass into the transmitted component.
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THANK YOU
INTERFERENCE LECTURE BY DR.T.VISHWAM