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PHY 102: Lecture 10 10.1 Index of Refraction 10.2 Total Internal Reflection 10.3 Prism and Rainbows 10.4 Lenses 10.5 Formation of Images 10.6 Lens Equations.

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Presentation on theme: "PHY 102: Lecture 10 10.1 Index of Refraction 10.2 Total Internal Reflection 10.3 Prism and Rainbows 10.4 Lenses 10.5 Formation of Images 10.6 Lens Equations."— Presentation transcript:

1 PHY 102: Lecture 10 10.1 Index of Refraction 10.2 Total Internal Reflection 10.3 Prism and Rainbows 10.4 Lenses 10.5 Formation of Images 10.6 Lens Equations

2 PHY 102: Lecture 10 Refraction of Light 10.1 Index of Refraction

3 Index of Refraction Speed of light in vacuum is c = 3.00 x 10 8 m/s Light travels through many materials - air, water, glass Atoms in the material absorb, reemit, and scatter light Light travels through the material at a speed less than c The actual speed depends on the nature of the material The change in speed as a ray of light goes from one material to another causes the ray to deviate from its incident direction This change in direction is call refraction Index of refraction describes the extent to which speed of light in a material differs from that in a vacuum

4 Definition of Index of Refraction n is the index of refraction of a material n = Vacuum light speed / Material light speed n = c/v n of vacuum is 1.00

5 Index of Refraction of Materials

6 Refraction - 1 Light strikes the interface between two transparent materials, such as air and water Light divides into two parts Part of the light is reflected, with the angle of reflection equaling the angle of incidence The remainder is transmitted across the interface If the incident ray does not strike the interface at normal incident, the transmitted ray has a different direction than the incident ray

7 Refraction - 2 The ray that enters the second material is said to be refracted and behaves in one of two ways 1.When light travels from a medium where the refractive index is smaller into a medium where it is larger, the refracted ray is bent toward the normal 2.When the light travels from a medium where the refractive index is larger into a medium where it is smaller, the refracted ray is bent away from normal

8 Refraction - 3 In both parts of the figure the angles of incidence, refraction, and reflection are measured relative to the normal The index of refraction of air is labeled n 1 in part a It is n 2 in part b We label all variables associated with the incident (and reflected) ray with subscript 1 and all variables associated with the refracted ray with subscript 2

9 Snell’s Law Light travels from a material with refractive index n 1 into a material with refractive index n 2 The refracted ray, the incident ray, and the normal to the interface between the materials all lie in the same plane The angle of refraction  2 is related to the angle of incidence  1 by n 1 sin  1 = n 2 sin  2

10 n Depends on Angle of Incidence Principle of conservation of energy Energy reflected plus energy refracted must equal energy of incident light If there is no absorption by material Percentage of incident energy that is reflected versus refracted light depends on –Angle of incidence –Refractive indices of materials

11 Amount of Reflection Surfaces that both reflect and transmit light –Light perpendicular to surface (angle of incidence = 0 0 ) reflects the least –Amount of reflection increases as angle of incidence increases towards 90 0 Reflection for different angles of incidence for plate glass

12 Index of Refraction by Wavelength

13 Problem 1 The incident ray is in air  1 = 46 0 and n1 = 1.00 The refracted ray is in water n2 = 1.33 Find  2 sin  2 = n 1 sin  1 /n 2 = (1.00)sin46/1.33 = 0.54  2 = sin -1 (0.54) = 32 0

14 Apparent Depth When rays entering the air are extended back into the water they indicate that the observer sees a virtual image of the chest at an apparent depth that is less than the actual depth

15 Apparent Depth from Directly above Object d’ = d(n 2 / n 1 )

16 Problem 2 A swimmer is treading water (head above water) at the surface of a pool 3.00 m deep She sees a coin on the bottom of the pool directly below her How deep does the coin appear to be? d’ =d(n 2 /n 1 ) = (3.00 m)(1.00/1.33) = 2.26 m

17 Displacement of Light by a Transparent Slab of Material A windowpane is a transparent slab of glass It consists of a plate of glass with parallel surfaces When a ray of light passes through the glass, the ray emergent ray is parallel to incident ray but displaced from it

18 PHY 102: Lecture 10 Refraction of Light 10.2 Total Internal Reflection

19 Total Internal Reflection - 1 Light passes from a medium of larger refraction index into one of smaller refraction index (water to air) Refracted ray bends away from the normal As the angle of incidence increases, the angle of refraction also increases

20 Total Internal Reflection - 2 When the angle of incidence reaches a certain value called critical angle  c the angle of refraction is 90 0 Then the refracted ray points along the surface

21 Total Internal Reflection - 3 When the angle of incidence exceeds the critical angle, there is no refracted light All the incident light is reflected back into the medium from which it came This is called total internal reflection

22 Total Internal Reflection - 4 The total reflection occurs only when light travels from a higher index medium toward a lower index medium It does not occur when light propagates in the reverse direction

23 Critical Angle sin  c = n 2 / n 1 where (n 1 > n 2 )

24 Problem 3-1 A beam of light is propagating through diamond (n 1 = 2.42) and strikes a diamond-air interface at an angle of incidence of 28 0 Will part of beam enter the air (n 2 = 1.00) or will the beam be totally reflected at the interface?  c = sin -1 (n 2 /n 1 )  c = sin -1 (1.00/2.42) = 24.4 0

25 PHY 102: Lecture 10 Refraction of Light 10.3 Prisms and Raindows

26 Monochromatic Light Through Prism Ray of monochromatic light passes through a glass prism Prism is surrounded by air When the light enters the prism the refracted ray is bent toward the normal Refractive index of glass is greater than that of air When the light leaves the prism it is refracted away from the normal

27 Colored Light Through Prism Refractive index of glass depends on wavelength Rays corresponding to different colors are bent by different amounts by the prism They depart in different directions The greater the index of refraction the greater the bending This is known as dispersion

28 Indices of Refraction of Crown Glass

29 Rainbows - 1 Light from the sun enters a spherical raindrop Light of each color is refracted by an amount that depends on the refractive index of water for that wavelength

30 Rainbow - 2 Light is reflected from the back surface of the droplet Then the different colors are again refracted as they reenter the air Each droplet disperses the light into its full spectrum of colors The observer sees only one color of light coming from any given droplet

31 PHY 102: Lecture 10 Refraction of Light 10.4 Lenses

32 Lens Focal Point F - 1 Paraxial rays are near the principal axis of lens Paraxial rays parallel to the principal axis converge to a single point on the axis after emerging from the lens This point is called the focal point F of the lens An object located infinitely far away on the principal axis leads to an image at the focal point of the lens Focal length f is distance from the focal point to the lens

33 Lens Focal Point F - 2 We assume that the lens is so thin compared to f that it makes no difference whether f is measured between the focal point and either surface of the lens or center of the lens

34 Converging Lens This type of lens is a converging lens or convex lens It causes incident parallel rays to converge at the focal point

35 Diverging Lens Diverging lens or concave lens causes incident parallel rays to diverge after exiting the lens Paraxial rays that are parallel to the principal axis appear to originate from a single point on the axis after passing through the lens This point is the focal point F

36 PHY 102: Lecture 10 Refraction of Light 10.5 Formation of Images

37 Ray Diagrams

38 Ray Tracing – Converging Lens Ray 1 Ray initially travels parallel to the principal axis. In passing through a converging lens, the ray is refracted toward the axis and travels through the focal points on the right side of the lens Ray 2 Ray first passes through the focal point to the left and then is refracted by the lens in such a way that it leaves traveling parallel to the axis Ray 3 Ray travels directly through the center of the thin lens without any appreciable bending

39 Ray Tracing – Diverging Lens Ray 1 Ray initially travels parallel to the principal axis. In passing through a diverging lens, the ray is refracted away from the axis, and appears to have originated from the focal point on the left of the lens. The dashed line represents the apparent path of the ray Ray 2 Ray leaves the object and moves toward the focal point on the right of the lens. Before reaching the focal point, however, the ray is refracted by the lens so as to exit parallel to the axis. The dashed line indicates the ray’s path in the absence of the lens Ray 3 Ray travels directly through the center of the thin lens without any appreciable bending

40 Image Formed – Converging Lens - 1 Object is before 2F, the image is real, inverted, and smaller than the object The image is beyond F

41 Image Formed – Converging Lens - 2 Object between 2F and F, the image is real, inverted and larger than the object The image is beyond F

42 Image Formed – Converging Lens - 3 Object between F and the lens, the image is virtual

43 Image Formed – Diverging Lens The image is virtual, upright and smaller than the object

44 PHY 102: Lecture 10 Refraction of Light 10.6 Lens Equations

45 Lens Equation Geometry

46 Lens Equation - Distance d o is distance of object from lens d i is distance of image from lens f is focal length + for converging (convex) lens – for diverging (concave) lens

47 Example Lens Equation - Distance Focal lens of convex lens is f = + 4 cm Object is located at d o = 10 cm What is location of image, di? (1/10) + (1/d i ) = ¼ 0.10 + (1/d i ) = 0.25 1/d i = 0.25 – 0.10 = 0.15 d i = 1/0.15 = 6.67 cm Positive image distance means image is “real”

48 Example Lens Equation - Distance Focal lens of concave lens is f = - 4 cm Object is located at d o = 10 cm What is location of image, di? (1/10) + (1/d i ) = -¼ 0.10 + (1/d i ) = -0.25 1/d i = -0.25 – 0.10 = -0.35 d i = -1/0.35 = -2.86 cm Negative image distance means image is “virtual”

49 Lens Equation – Size or Magnification magnification = Positive magnification means upright image Negative magnification means inverted image

50 Example Magnification Equation Focal lens of convex lens is f = + 4 cm Object is located at d o = 10 cm Image is located at d i = 6.67 cm Magnification = - 6.67 / 10 = - 0.67 The image is inverted and smaller

51 Example Magnification Equation Focal lens of concave lens is f = - 4 cm Object is located at d o = 10 cm Image is located at d i = -2.87 cm Magnification = - (-2.86) / 10 = + 0.29 The image is upright and smaller

52 Convex Lens Chart Object Location Image Location Image Size Upright Inverted Real Virtual > 2f> fSmallerInvertedReal = 2f SameInvertedReal 2f to f>2fLargerInvertedReal = fInfinity--- < f-LargerUprightVirtual

53 Concave Lens Chart Object Location Image Location Image Size Upright Inverted Real Virtual Any where -SmallerUprightVirtual


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