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Q.Define the term 'threshold frequency' in relation to photoelectric effect. Explain the variation of photoelectric current with

(a) the intensity of incident radiation and
(b) the frequency of incident radiation. (1+1+1=3) OR Using the postulates of Bohr's atomic model, find an expression for the radius of the nnth stationary orbit of a hydrogen atom.
Meghalaya MboseMBOSE Meghalaya Intermediate Board 2025Subjective· 3mImportance★★★★★
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The threshold frequency is the minimum frequency for photoemission to occur at all; photoelectric current rises linearly with intensity but does not depend on frequency (only the photoelectrons' kinetic energy does). For the alternative, combining Bohr's force and angular-momentum-quantization conditions gives the radius of the nnth orbit.

Threshold frequency

The threshold frequency ν0\nu_0 of a metal surface is the minimum frequency of incident electromagnetic radiation that can just cause photoelectric emission from that surface. For incident radiation of frequency ν<ν0\nu <\nu_0, no photoelectrons are emitted, however large the intensity of the radiation; for ν≥ν0\nu \ge\nu_0, emission occurs instantaneously.

  1. Variation with intensity For a fixed frequency ν>ν0\nu >\nu_0, the number of photoelectrons emitted per second (and hence the photoelectric/saturation current) is found to be directly proportional to the intensity of the incident radiation -- more intense light delivers more photons per second, each of the same energy hνh\nu, ejecting proportionally more electrons per second.
  2. Variation with frequency For a fixed intensity, increasing the frequency of the incident radiation (above ν0\nu_0) does not change the (saturation) photoelectric current -- the number of photoelectrons emitted per second depends on intensity, not frequency. What frequency does affect is the maximum kinetic energy of the emitted photoelectrons (and hence the stopping potential), which increases linearly with frequency according to Einstein's equation Kmax=hν−ϕ0K_{max}=h\nu-\phi_0. …

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