light hits a metal plate, ejecting electrons once ejected, electrons are attracted to a positively...

12
3 RING BINDER SETUP SCIENCE FAIR PROJECT Step By Step 2014

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Page 1: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

THE PHOTOELECTRIC EFFECT

Page 2: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

The Photoelectric Effect

Page 3: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

Light hits a metal plate, ejecting electrons

Once ejected, electrons are attracted to a positively charged electrode.

Electrode is connected to a sensitive meter.

When light shines on the metal plate, meter deflects (gets a current reading)

When light is turned off, meter reads zero.

Page 4: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

Put a negatively charged screen in the way. Ejected electrons will be repelled back down to the metal. No current will be read on the meter.

Page 5: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

Low Intensity Light = No Current in Meter

Page 6: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

HIGH Intensity Light = Still No Current in Meter

Brighter light does not result in more energetic electrons punching through the screen.

Page 7: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

Low Intensity UV Light = Current in Meter!

Electrons make it through the screen

Page 8: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

Planck’s Formula

Planck deduced that the energy of a wave of light is tied to its frequency.

E = hfwhere h = 6.6x10-34 J s

UV light = high frequency = high energy. Red light = low frequency = low energy. Red light cannot give the electrons

enough energy to get through the screen, but UV can.

Page 9: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

Einstein’s Explanation of the Photoelectric Effect

Light is a wave, but it is sent in packets Each packet has a small quantity of

energy given by its frequency (E = hf) One packet knocks one electron, if it has

the energy Higher intensity does NOT equal more

energetic electrons

Page 10: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

Einstein (cont’d)

Low frequency light produces low energy electrons. These electrons cannot push through the negative screen.

Sending more packets of low frequency light will not help. It will just produce more low energy electrons, none of which can get past the screen.

Page 11: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

Einstein (cont’d)

High frequency light produces high frequency electrons.

Even a dim beam of high frequency light will get a current reading in the meter.

Increasing the intensity of the beam in this case will mean an increased current reading in the meter.

Page 12: Light hits a metal plate, ejecting electrons  Once ejected, electrons are attracted to a positively charged electrode.  Electrode is connected to

The Work Function

Applying the law of conservation of energy:Ebefore = Eafter

If we treat this like a perfectly elastic collisionElight = Eelectron

Turns out this is not quite right. It takes some energy to eject the electron from the atom, so the electron ends up with less energy than the light. Every element has a different hold on its electrons. The work done removing the electron is called the work function, W.

Elight = W + Eelectron