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A graph of frequency verses kinetic energy of an electron is shown, where frequency is along x axis and kinetic energy is along the y axis. The plot is a straight line having an inclination with x axis and meets the x axis at f sub zero, known as threshold frequency, given by B E divided by h. The threshold kinetic energy is written as equal to h f minus B E.
Photoelectric effect. A graph of the kinetic energy of an ejected electron, KE e size 12{"KE" rSub { size 8{e} } } {} , versus the frequency of EM radiation impinging on a certain material. There is a threshold frequency below which no electrons are ejected, because the individual photon interacting with an individual electron has insufficient energy to break it away. Above the threshold energy, KE e size 12{"KE" rSub { size 8{e} } } {} increases linearly with f size 12{f} {} , consistent with KE e = hf BE size 12{"KE"= ital "hf" - "BE"} {} . The slope of this line is h size 12{h} {} —the data can be used to determine Planck’s constant experimentally. Einstein gave the first successful explanation of such data by proposing the idea of photons—quanta of EM radiation.

Einstein’s idea that EM radiation is quantized was crucial to the beginnings of quantum mechanics. It is a far more general concept than its explanation of the photoelectric effect might imply. All EM radiation can also be modeled in the form of photons, and the characteristics of EM radiation are entirely consistent with this fact. (As we will see in the next section, many aspects of EM radiation, such as the hazards of ultraviolet (UV) radiation, can be explained only by photon properties.) More famous for modern relativity, Einstein planted an important seed for quantum mechanics in 1905, the same year he published his first paper on special relativity. His explanation of the photoelectric effect was the basis for the Nobel Prize awarded to him in 1921. Although his other contributions to theoretical physics were also noted in that award, special and general relativity were not fully recognized in spite of having been partially verified by experiment by 1921. Although hero-worshipped, this great man never received Nobel recognition for his most famous work—relativity.

Calculating photon energy and the photoelectric effect: a violet light

(a) What is the energy in joules and electron volts of a photon of 420-nm violet light? (b) What is the maximum kinetic energy of electrons ejected from calcium by 420-nm violet light, given that the binding energy (or work function) of electrons for calcium metal is 2.71 eV?

Strategy

To solve part (a), note that the energy of a photon is given by E = hf size 12{E = ital "hf"} {} . For part (b), once the energy of the photon is calculated, it is a straightforward application of KE e = hf –BE size 12{"KE" rSub { size 8{e} } = ital "hf""–BE"} {} to find the ejected electron’s maximum kinetic energy, since BE is given.

Solution for (a)

Photon energy is given by

E = hf size 12{E = ital "hf"} {}

Since we are given the wavelength rather than the frequency, we solve the familiar relationship c = size 12{c=fλ} {} for the frequency, yielding

f = c λ . size 12{f= { {c} over {λ} } } {}

Combining these two equations gives the useful relationship

E = hc λ . size 12{E = { { ital "hc"} over {λ} } } {}

Now substituting known values yields

E = 6 . 63 × 10 –34 J s 3.00 × 10 8 m/s 420 × 10 –9 m = 4.74 × 10 –19 J . size 12{E = { { left (6 "." "63" times " 10" rSup { size 8{"–34"} } " J " cdot " s " right )` left (3 "." "00" times " 10" rSup { size 8{8} } " m/s" right )} over {"420 " times " 10" rSup { size 8{"–9"} } " m"} } =" 4" "." "74 " times " 10" rSup { size 8{"–19"} } " J"} {}

Converting to eV, the energy of the photon is

E = 4 . 74 × 10 –19 J 1 eV 1.6 × 10 –19 J = 2.96 eV . size 12{E = left (4 "." "74 " times " 10" rSup { size 8{"–19"} } " J " right ) { {1`"eV"} over {1 "." "6 " times " 10" rSup { size 8{"–19"} } `J} } =" 2" "." "96"`"eV"} {}

Solution for (b)

Finding the kinetic energy of the ejected electron is now a simple application of the equation KE e = hf –BE size 12{"KE" rSub { size 8{e} } = ital "hf""–BE"} {} . Substituting the photon energy and binding energy yields

KE e = hf – BE = 2 . 96 eV – 2 . 71 eV = 0 . 246 eV . size 12{"KE" rSub { size 8{e} } = ital "hf"" – BE "=" 2" "." "96 eV – 2" "." "71 eV "=" 0" "." "246 eV"} {}

Discussion

The energy of this 420-nm photon of violet light is a tiny fraction of a joule, and so it is no wonder that a single photon would be difficult for us to sense directly—humans are more attuned to energies on the order of joules. But looking at the energy in electron volts, we can see that this photon has enough energy to affect atoms and molecules. A DNA molecule can be broken with about 1 eV of energy, for example, and typical atomic and molecular energies are on the order of eV, so that the UV photon in this example could have biological effects. The ejected electron (called a photoelectron ) has a rather low energy, and it would not travel far, except in a vacuum. The electron would be stopped by a retarding potential of but 0.26 eV. In fact, if the photon wavelength were longer and its energy less than 2.71 eV, then the formula would give a negative kinetic energy, an impossibility. This simply means that the 420-nm photons with their 2.96-eV energy are not much above the frequency threshold. You can show for yourself that the threshold wavelength is 459 nm (blue light). This means that if calcium metal is used in a light meter, the meter will be insensitive to wavelengths longer than those of blue light. Such a light meter would be completely insensitive to red light, for example.

Questions & Answers

A golfer on a fairway is 70 m away from the green, which sits below the level of the fairway by 20 m. If the golfer hits the ball at an angle of 40° with an initial speed of 20 m/s, how close to the green does she come?
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can someone explain to me, an ignorant high school student, why the trend of the graph doesn't follow the fact that the higher frequency a sound wave is, the more power it is, hence, making me think the phons output would follow this general trend?
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Nevermind i just realied that the graph is the phons output for a person with normal hearing and not just the phons output of the sound waves power, I should read the entire thing next time
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Follow up question, does anyone know where I can find a graph that accuretly depicts the actual relative "power" output of sound over its frequency instead of just humans hearing
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Source:  OpenStax, College physics for ap® courses. OpenStax CNX. Nov 04, 2016 Download for free at https://legacy.cnx.org/content/col11844/1.14
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