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Q.Assertion (A) : Photoelectric current increases with an increase in intensity of incident radiation, for a given frequency of incident radiation and the accelerating potential. Reason (R) : Increase in the intensity of incident radiation results in an increase in the number of photoelectrons emitted per second and hence an increase in the photocurrent. (A) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of the Assertion (A). (C) Assertion (A) is true, but Reason (R) is false. (D) Assertion (A) is false and Reason (R) is also false.

CBSECBSE Class XII Board 2024MCQ· 1mImportance★★★★★
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Intensity determines the number of photons hitting the surface per second; more photons mean more photoelectrons ejected, directly increasing the photocurrent. Both statements are true, and the reason correctly explains the assertion.

Understanding the Photoelectric Effect and Intensity

The photoelectric effect hinges on Einstein's quantum picture: light arrives as discrete packets (photons), each carrying energy E=hνE = h\nu. When a photon strikes a metal surface, it can transfer its energy to a single electron. If that energy exceeds the work function ϕ\phi, the electron escapes.

Now, what does intensity mean in this quantum framework? Classically, intensity is power per unit area. But at the photon level, higher intensity simply means more photons arriving per second (assuming frequency is fixed). Each photon still carries the same energy hνh\nu, but you have a larger flux of them.

The key insight: one photon can eject at most one electron. So if you double the number of incident photons per second, you double the number of photoelectrons emitted per second—provided the frequency is above the threshold and the accelerating potential is sufficient to collect them all.


Step-by-Step Analysis

  1. What the Assertion claims

    For a fixed frequency ν>ν0\nu > \nu_0 (above threshold) and a fixed accelerating potential, increasing the intensity of the incident light increases the photoelectric current.

    This is experimentally verified and theoretically sound: more photons ⇒\Rightarrow more photoelectrons ⇒\Rightarrow larger current.

  2. What the Reason states

    The reason explains why the current increases: intensity ∝\propto number of incident photons per second. Since each photon can liberate one electron (one-to-one interaction), the rate of photoelectron emission scales with intensity.

    Mathematically, if intensity I∝Nphotons/tI \propto N_{\text{photons}}/t, then the photocurrent i∝Nelectrons/t∝Ii \propto N_{\text{electrons}}/t \propto I.

  3. Does the Reason explain the Assertion?

    Yes, directly. The Reason provides the microscopic mechanism: the increase in photocurrent is because more photoelectrons are emitted per second, which in turn is because intensity corresponds to a higher photon flux.

  4. Checking for any caveats

    The assertion specifies "for a given frequency … and the accelerating potential." This is important:

    • Frequency must be above threshold (ν≥ν0\nu \geq \nu_0) for any photoelectrons to be emitted. …

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