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Q.State the laws of photoelectric effect. The light of intensity I and frequency ν\nu is incident on a metal surface of work function W. How will the photoelectric current and the maximum kinetic energy of the photoelectrons change when

(i) Intensity of the incident light is same but frequencies are different.
(ii) Frequency of the incident light is same but intensities are different. OR What are the Matter waves? How these wave differ from the mechanical waves and the electromagnetic waves? An electron in hydrogen atom revolves in an orbit of radius 0.5 A∘\overset{\circ}{\text{A}} around the nucleus with speed 2.2×1062.2 \times 10^6 m/sec. Calculate the equivalent electric current.
Uttar Pradesh UpmspUP Board (UPMSP) Intermediate 2020Subjective· 5mImportance★★★★★
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KEmax=hν−W_{max}=h\nu-W depends only on frequency; the number of photoelectrons (current) depends on how many photons arrive.

Laws of photoelectric effect.

  1. For a given metal and frequency (above threshold), the photoelectric current is proportional to the intensity of incident light.
  2. The maximum kinetic energy of the emitted electrons depends only on the frequency of light, not on its intensity.
  3. There is a threshold frequency ν0\nu_0 below which no emission occurs, however intense the light.
  4. Emission is instantaneous (no measurable time lag).

Einstein's equation: Kmax=hν−WK_{max}=h\nu-W, where WW is the work function.

(i) Same intensity, different frequencies.

  • Maximum KE: Kmax=hν−WK_{max}=h\nu-W increases as the frequency ν\nu increases (and is zero below ν0\nu_0).
  • Photoelectric current: the number of photoelectrons equals the number of incident photons. If the energy-intensity is held fixed while ν\nu rises, each photon carries more energy hνh\nu, so fewer photons arrive per second and the current decreases. (If one instead compares equal photon flux, the current stays the same — the current is set by the photon number, not the frequency.)

(ii) Same frequency, different intensities.

  • Maximum KE: unchanged — Kmax=hν−WK_{max}=h\nu-W has no dependence on intensity. …

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