Light of intensity `10^(-5)Wm^(-2)` falls on a sodium photocell of surface area `2cm^(2)`. Assuming that the top 5 layers of sodium absorb the incident energy, estimate the time required for photoelectric emission in the wave picture of radiation. The work function of the metal is given to be about 2eV. What is the implication of your answer? effective atomic area `=10^(-20)m^(2)`.

Assume one conduction electron per atom. Effective atomic area `~10^(-20)m^(2)`
Number of electrons in 5 layers
`=(5xx2xx10^(-4)m^(2))/(10^(-20)m^(2))=10^(17)`
Incident power
`=10^(-5)Wm^(-2)xx2xx10^(-4)m^(2)=2xx10^(-9)W`
In the wave picture, incident power is uniformly absorbed by all the electrons continuously. Consequently, energy absorbed per second per electron
`=2xx10^(-9)//10^(17)=2xx10^(-26)W`
Time required for photoelectric emission
`=2xx1.6xx10^(-19)J//2xx10^(-26)W=1.6xx10^(7)s`
Which is about 0.5 year
Implication: Experimentally, photoelectric emission is observed nearly instantaneously `(~10^(-9) s)`: Thus, the wave picture is in gross disagreement with experiment. In the photon-picture, energy of the radiation is not continuously shared by all the electrons in the top layers. Rather, energy comes in discontinuous ‘quanta’. and absorption of energy does not take place gradually. A photon is either not absorbed, or absorbed by an electron nearly instantly.