Image intensifiers used in night-vision devices create a bright image from dim l

Question

Image intensifiers used in night-vision devices create a bright image from dim light by letting the light first fall on a photocathode. Electrons emitted by the photoelectric effect are accelerated and then strike a phosphorescent screen, causing it to glow more brightly than the original scene. Recent devices are sensitive to wavelengths as long as 900 nm, in the infrared:

If light of wavelength 680nm strikes such a photocathode, what will be the maximum kinetic energy, in eV, of the emitted electrons?

Express your answer using two decimal places and include the appropriate units.

Explanation / Answer

KEmax = hc/lambda - work function

threshold when KE = 0

hc/lambda = work function = (6.625x10^-34*3x10^8)/(900x10^-9x1.6x10^-19) = 2.208 x 10^-19 J

      we know ( 1 eV 1.6x10^-19 J )

   work function = 1.38 eV

Kinetic Energy Maximum : -

Kmax = hc/lambda - work = (6.625x10^-34*3x10^8)/(680x10^-9x1.6x10^-19) -1.38= 1.8235 ev - 1.38 eV =

    = 0.44 eV

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