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Q.What is stopping potential? Answer the following in short:

(i) Is the stopping potential V0 a definite value of retarding potential for a definite frequency of incident radiation but of different intensities?
(ii) Whether V0 is different for different values of frequencies of incident radiation but of same intensity?
(iii) Does the saturation photoelectric current for different frequencies remain the same?
(iv) Define threshold frequency for a material. (1+4×1/2=3) OR The work function of caesium metal is 2.14 eV. When light of frequency 6 × 10^14 Hz is incident on the metal surface, photoemission of electrons occurs. What is the
(i) maximum kinetic energy of the emitted electron
(ii) stopping potential? (1 1/2+1 1/2=3)
Assam AhsecAHSEC Higher Secondary (HS) Final Examination 2025Subjective· 3mImportance★★★★★
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Stopping potential depends only on frequency (not intensity); it is the retarding voltage that just stops the most energetic photoelectrons. (OR: for caesium at ν=6×10¹⁴ Hz, KEmax ≈ 0.35 eV and V0 ≈ 0.35 V.)

Stopping potential: When photoelectrons are emitted from a metal surface and a retarding (opposing) potential is applied between the emitter and collector, increasing this retarding potential reduces the photocurrent. The stopping potential V0 is the minimum value of this retarding potential at which the photocurrent becomes exactly zero — it is just enough to stop even the most energetic (fastest) photoelectrons from reaching the collector. It is related to the maximum kinetic energy of the emitted electrons by eV0 = Kmax.

  1. Yes. For a FIXED frequency of incident light, the stopping potential V0 is the SAME regardless of the intensity of the light. This is because Kmax = hν − φ0 depends only on the frequency ν (and the material's work function φ0), not on intensity — intensity only affects the NUMBER of photons (hence the photocurrent magnitude/number of photoelectrons), not the energy of each individual photon.
  2. Yes. V0 is DIFFERENT for different frequencies (at the same intensity), because Kmax = hν − φ0 changes with ν — a higher frequency gives more energetic photoelectrons and hence a higher stopping potential.
  3. Yes. For light of the same intensity, the SATURATION photoelectric current remains (approximately) the same regardless of frequency (as long as ν > ν0), because the saturation current is determined by the total number of photoelectrons emitted per second, which depends on the intensity (energy delivered per second), not directly on the frequency. …

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