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Photoelectric Effect

Photoelectric effect refers to the phenomenon in which electrons are emitted from a material when it is exposed to light (electromagnetic radiation) of sufficient energy. Photoelectric effect provided evidence for the quantized nature of light and supported the wave-particle duality of electromagnetic radiation. The dual nature of matter and the dual nature of radiation are important concepts states that a matter can exhibit both particle like and wave like properties.

In this article, we will read in detail about photoelectric effect, its principle, photoelectric equation, threshold energy and applications.



What is Photoelectric Effect

When a metal is exposed to light, the photoelectric effect occurs, in which the metal emits electrons from its valence shell.  The emitted electron is known as photoelectron, and this phenomenon is commonly known as photoemission.



Wilhelm Ludwig Franz Hallwachs was the first to notice the photoelectric effect, which Heinrich Rudolf Hertz later confirmed. This phenomenon, as well as the quantum nature of light, were explained by Einstein. In 1921, Einstein was awarded the Nobel Prize for Physics for his work on the Photoelectric Effect.

Threshold Energy for the Photoelectric Effect

The photons that strike the metal’s surface must have enough energy to overcome the attractive forces that bind the electrons to the nuclei in order for the photoelectric effect to occur. The threshold energy (represented by the symbol Φ) is the least amount of energy required to remove an electron from a metal. A photon’s frequency must be identical to the threshold frequency in order for it to have the same energy as the threshold energy (which is the minimum frequency of light required for the photoelectric effect to occur). The corresponding wavelength (called the threshold wavelength) is generally denoted by the sign λth, and the threshold frequency is usually denoted by the symbol νth. The following is the link between the threshold energy and the threshold frequency.

Φ = hνth = hc / λth

Relationship between the Frequency of the Incident Photon and the Kinetic Energy of the Emitted Photoelectron

Ephoton = Φ + Eelectron

hν = hνth + 1/2 mev2

where,

  • Ephoton signifies the incident photon’s energy, which is equal to hν.
  • Φ signifies the metal surface’s threshold energy, which is equal to hνth.
  • Eelectron is the photoelectron’s kinetic energy, which is 1/2mev2 (me = mass of electron = 9.1 x 10-31 kg).

There will be no emission of photoelectrons if the photon’s energy is less than the threshold energy (since the attractive forces between the nuclei and the electrons cannot be overcome). As a result, if ν < νth , the photoelectric effect will not occur. There will be an emission of photoelectrons if the photon frequency is exactly equal to the threshold frequency (ν=νth), but their kinetic energy will be zero.

What is a Photon?

A photon is the smallest discrete amount of electromagnetic energy, also known as a quantum. It’s the fundamental unit of all light.

Photons are continually in motion and travel at a constant speed of 2.998 x 108 m/s to all observers in a vacuum. The speed of light, indicated by the letter c. Every photon has a specific quantity of energy and momentum. The photon’s energy is provided by,

E = hν

where,

The momentum of a photon is given by,

p = h/λ

where,

Properties of Photon

Photons have the following basic properties:

Minimum Condition for Photoelectric Effect

If γ = frequency of incident photon and γth= threshold frequency, then,

  1. If γ < γth, there will be no photoelectron ejection and, as a result, no photoelectric effect.
  2. If γ=γth, photoelectrons are simply expelled from the metal surface, and the electron’s kinetic energy is zero.
  3. If γ>γth, photoelectrons, and kinetic energy will be ejected from the surface.

λth = c/γth

For λ = wavelength of the incident photon, then

  1. If λ<λth, the photoelectric effect will occur, and the expelled electron will have kinetic energy.
  2. If λ= λth, the photoelectric effect will be the only one that occurs, and the kinetic energy of the ejected photoelectron will be zero.
  3. There will be no photoelectric effect if λ>λth.

Φ = hγth = hc/λth

 If E = energy of an incident photon, then

  1. If E<Φ, there will be no photoelectric effect.
  2. If E =Φ, just the photoelectric effect occurs, but the kinetic energy of the expelled photoelectron is 0.
  3. If E > photoelectron, photoelectron will be zero.
  4. If E >Φ, the photoelectric effect will occur, as will the expelled electron’s possession of the kinetic energy.

Principle of Photoelectric Effect

A metal surface is irradiated with light in the photoelectric effect, and when light falls on the metal’s surface, photoemission occurs, and photoelectrons are ejected from the metal’s surface. The energy of the wave’s photon is transmitted to the metal atom’s electrons, which causes the electrons to get excited and expelled with a certain velocity.

Equation of Photoelectric Effect

The photon’s energy is equal to the sum of the metal’s threshold energy and the photoelectron’s kinetic energy.

Thus, the equation of photoelectric wave is given by,

KEmax = hv–ϕ

where,

Work function is determined by the metal in question, and it will change if the metal is changed. The work function is sometimes defined in terms of threshold frequency, which is the frequency of light for which the emitted Photoelectron’s maximal kinetic energy is zero.

ϕ = hv0

where,

The maximum kinetic energy remains constant as the light intensity increases, but the value of photocurrent increases. 

Characteristics Of Photoelectric Effect

Factors affecting Photoelectric Effect

The photoelectric effect depends on :

  1. The intensity of incident radiation.
  2. A potential difference between metal plate and collector.
  3. Frequency of incident radiation.

Applications of Photoelectric Effect

Also, Check

Solved Examples on Photoelectric Effect

Example 1: Light of wavelength 4000Å is incident on a metal plate whose work function is 2eV. What is the maximum kinetic energy of emitted photoelectron?

Solution:

The wavelength of light is λ=4000Å and work function, φ0=2eV

From the Einstein Photoelectric equation, the maximum kinetic energy of photoelectron is given by,

Kmax=(hc/λ–φ0)

where ‘h′ is Planck’s constant and ‘c′ is the speed of light in a vacuum.

Kmax=(6.6×10–34×3×108/4000×10–10–(2×1.6×10–19))

Kmax=4.95×10–19/1.6×10–19eV–2eV=1.1eV

The maximum kinetic energy 1.1eV.

Example 2: The value of retarding potential needed to stop the photoelectrons ejected from a metal surface of work function 1.2eV with the light of energy 2eV is

Solution:

Work function of the metalφ=1.2eV and energy of the photons is hν=2eV.

The maximal kinetic energy of photoelectrons is given by the Einstein photoelectric equation:

eV=hv–φ

Where ‘V′ is retarding potential or stopping potential.

h is the Planck’s constant.

φ is the work function of the metal.

V=(2eV–12eV)/e=0.8V

Thus, the retarding potential is 0.8V

FAQs on Photoelectric Effect

What is the mass of a photon?

The photon’s rest mass is zero, which indicates that if the photon is moving, it will have some momentum, which is equivalent to mass, but at rest, the photon’s mass will be zero.

What is threshold frequency?

The threshold frequency of light is the frequency at which the photoelectron’s kinetic energy is zero and it is just enough to emit photoelectron. The work function of the metal is equal to the energy associated with threshold frequency.

What is stopping potential?

When the lighted metal is retained at the cathode, the stopping potential is the lowest potential at which no photoelectrons reach the anode.

What is work function?

The minimal amount of energy necessary to extract one electron from the valence shell of a metal. It all depends on the type of metal we’re using. Only at frequencies greater than the threshold frequency does the photoelectric effect occur; if the frequency of the light wave is less than the threshold frequency, the photoelectric effect does not occur.


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