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Q.Derive Einstein's photoelectric equations.

Jammu Kashmir JkboseJKBOSE Class 12 Annual Regular Examination 2022Subjective· 3mImportance★★★★★
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Treating light as photons of energy hνh\nu, energy conservation for a single photon-electron collision gives Einstein's photoelectric equation, KEmax=hν−W0KE_{max}=h\nu-W_0.

Einstein (1905) explained the photoelectric effect using Planck's quantum hypothesis: light of frequency ν\nu consists of discrete packets of energy called photons, each of energy E=hνE = h\nu, where hh is Planck's constant.

When a photon of energy hνh\nu strikes the surface of a metal, it is absorbed entirely by a single electron (one photon interacts with one electron — no sharing). Part of this absorbed energy is used to overcome the attractive forces holding the electron in the metal — this minimum energy is the work function W0W_0 of the metal. The remaining energy appears as the kinetic energy of the emitted photoelectron.

By conservation of energy, for an electron that just escapes the surface with the maximum possible kinetic energy (electrons from just below the surface lose no extra energy in escaping):

hν=W0+KEmaxh\nu = W_0 + KE_{max}

KEmax=hν−W0KE_{max} = h\nu - W_0

Since W0=hν0W_0 = h\nu_0 (where ν0\nu_0 is the threshold frequency):

KEmax=hν−hu0=h(ν−u0)KE_{max} = h\nu - h u_0 = h(\nu- u_0)

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