An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o from normal.

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from air strikes dolomite (n = 2.0) at an angle of 30 o from normal. Calculate: refl

description

An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o from normal. Calculate:  refl &  refr. Chapter 19. Diffraction & Interference. List & describe 3 properties of waves. Diffraction. The bending of light rays when passing a barrier. Diffraction. - PowerPoint PPT Presentation

Transcript of An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o from normal.

Page 1: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

An incident ray from air strikes dolomite (n = 2.0) at an angle of 30o from normal.

Calculate: refl & refr

Page 2: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Chapter 19Diffraction & Interference

Page 3: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

List & describe 3 properties of

waves

Page 4: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Diffraction•The bending of light rays when passing a barrier

Page 5: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Diffraction•Named by Francesco

Grimaldi by seeing blurred edges of

shadows

Page 6: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Isaac Newton•Predicted that light moved in the form of particles to explain

diffraction

Page 7: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Christiaan Huygens•Predicted that light moved in the form of

waves to explain diffraction

Page 8: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Thomas Young•Proved that light moved in the form of waves by

passing light thru a double slit. P 445

Page 9: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Thomas Young•The interference pattern caused by

diffraction produced dark & light lines

Page 10: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Monochromatic Light

•Light having only one wavelength

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Coherent Waves•Waves all in the

same phase

Page 12: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Diffraction InterferenceLightwaves

d

n

n

L

x

x L d=

Page 13: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Diffraction Interferencex L d=

xd L =

Doubleslit

Page 14: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate wavelength reinforced when waves passing through 2 slits 25 m apart cast bright lines 4.0 cm apart on a

screen 2.0 m away

Page 15: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate wavelength reinforced when waves

passing through 2 slits 25 m apart cast bright lines

that make a 37o angle from the principle axis

Page 16: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Diffraction Interferenced = distance between slits w = slit width

xd xw L L

= =

Page 17: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Diffraction InterferenceLightwaves

d

n

n

L

x

d sin

Page 18: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Wave Properties• Propagation• Reflection• Refraction• Diffraction • Interference

Page 19: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Propagation•Within a uniformed

medium, the generation of waves that move in straight

lines called rays

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Reflection•The bouncing of

waves off surfaces or medium boundaries

Page 21: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Refraction•The bending of

waves when passing from one medium to

another

Page 22: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Diffraction•The bending of

waves when passing around barriers

Page 23: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Interference•The superimposing two or more waves passing through the

same medium simultaneously

Page 24: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Photoelectric Effect•The emission of

electrons (e-)from a substance when

irradiated

Page 25: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

1st Law of Ph Eff•The rate of e- emission

is proportional to the intensity of the incident

light

Page 26: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

2nd Law of Ph Eff•The KE of e- emission

is independent of the intensity of the incident

light

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Photoelectric Effect•This led to the

discovery that e- in atoms exist in

distinct energy levels

Page 28: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Spectroscopy•The study of a substance under

continuous excitation energy

Page 29: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Energy of a Wave

Ewave = hf

Page 30: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Energy of Matter

Ematter = mc2

Page 31: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Duality of Nature

Proposed by Louis de Broglie

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Duality of NatureAll energy transfer exhibits properties of both waves &

particles

Page 33: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Duality Formula

= hmv

Page 34: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate the wavelength 2.21

kg of a ball thrown at 20.0 m/s

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Calculate the mass of blue light at

442 nm

Page 36: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate the wavelength of a 442 Mg truck moving at 36

km/hr

Page 37: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate the wavelength of a 4.42 x 106 Mg

train moving at 72 km/hr

Page 38: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

The of near IR red light is 663 nm.Calculate: E & m of

the light

Page 39: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

The of near UV light is 221 nm.

Calculate: E & m of the light

Page 40: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate wavelength reinforced when waves

passing through 2 slits 25 m apart cast bright lines

that make a 53o angle from the principle axis

Page 41: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate wavelength reinforced when waves

passing through a slit 75 m slit cast bright lines

that make a 53o angle from the principle axis

Page 42: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate wavelength reinforced when waves passing through 2 slits 75 m apart cast bright lines 5.0 cm apart on a

screen 2.5 m away

Page 43: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate wavelength reinforced when waves

passing through a 15 m slit cast bright lines 3.0 cm apart on a screen 2.5

m away

Page 44: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

A wavelength 180 nm is reinforced when waves

passing through a 15 m slit cast bright lines 3.0 cm apart. What is the

screen distance?

Page 45: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

A wavelength 18 nm is reinforced when waves passing through a 1.5

m slit cast bright lines 3.0 cm apart. What is the

screen distance?

Page 46: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Review

Page 47: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate wavelength reinforced when waves

passing through a 25 m slit cast bright lines 5.0

cm apart on a screen2.5 m away

Page 48: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate the mass & energy of UV light at

221 nm.

Page 49: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate Kinetic energy &

wavelength of a 442 g ball going

30.0 m/s

Page 50: An incident ray from air strikes dolomite (n = 2.0) at an angle of 30 o  from normal.

Calculate wavelength reinforced when waves

passing through a slit 4.5 m slit cast bright lines

that make a 37o angle from the principle axis