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Q.Why is wave theory of electromagnetic radiation not able to explain photoelectric effect? How does photon picture resolve this problem?

CBSECBSE Class XII Board 2019Subjective· 2mImportance★★★★★
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The wave theory fails because it predicts a time delay and intensity-dependent electron energy for photoemission, whereas experiments show instantaneous emission and energy dependent only on frequency. The photon picture resolves this by treating light as discrete quanta (photons) whose energy E=hνE = h\nu is transferred entirely to a single electron, making the effect instantaneous and frequency-dependent.

The core conflict: what wave theory predicts vs. what experiments show

The photoelectric effect is the emission of electrons from a metal surface when light of sufficient frequency shines on it. To see why the wave theory fails, we first need to understand what that theory would predict.

In classical wave theory, light is an electromagnetic wave. Its energy is spread continuously over the wavefront, and the intensity (brightness) is proportional to the square of the amplitude. The energy absorbed by an electron on the metal surface would depend on how long the wave shines — the electron would need to accumulate enough energy to overcome the work function (the binding energy holding it in the metal). This leads to two clear predictions:

  1. Time delay: For a dim light, the electron should take a measurable time to gather enough energy to escape. For a very dim light, this delay could be seconds or minutes.
  2. Energy depends on intensity: A brighter wave (higher amplitude) should give the ejected electron more kinetic energy, because the wave delivers more energy per unit time.

Neither of these predictions matches reality.

What experiments actually show

  1. Instantaneous emission: Electrons are ejected the instant the light hits the metal — no measurable time delay, even for extremely low intensities.
  2. Kinetic energy independent of intensity: The maximum kinetic energy of ejected electrons depends only on the frequency of the light, not on how bright it is. Increasing intensity only increases the number of electrons ejected, not their energy.
  3. Threshold frequency: Below a certain frequency (the threshold frequency ν0\nu_0), no electrons are ejected, no matter how intense the light.

These three facts are fatal for the wave theory.

Watch out

A common mistake is to think that wave theory predicts no photoelectric effect at all. It doesn't — it predicts a delayed effect with intensity-dependent energy. The contradiction is in the details, not the existence of the effect itself.

How the photon picture resolves each failure

Einstein's 1905 proposal was radical: light consists of discrete packets of energy called photons. Each photon has energy E=hνE = h\nu, where hh is Planck's constant and ν\nu is the frequency. A single photon interacts with a single electron, transferring its entire energy at once.

Let's walk through the resolution step by step.

  1. Instantaneous emission: Since the photon's energy is delivered in a single, indivisible quantum, the electron either absorbs it or not — there's no gradual accumulation. If the photon's energy hνh\nu exceeds the work function ϕ\phi, the electron is ejected immediately. This explains the absence of any time delay.

  2. Energy depends on frequency, not intensity: The maximum kinetic energy of the ejected electron is given by Einstein's photoelectric equation:

Kmax=hν−ϕK_{\text{max}} = h\nu - \phi

Here, ϕ\phi is the work function (the minimum energy needed to free an electron). The photon's energy hνh\nu is fixed by frequency alone. A brighter light means more photons per second, so more electrons are ejected — but each photon still has the same energy hνh\nu, so each electron gets the same kinetic energy. Intensity affects count, not energy per electron. …

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