User talk:HosseinJavanMard

Problem:

Radiation of wavelength ${\displaystyle \lambda }$ = 290 nm falls on a metal surface for which the work function is W = 4.05 eV. What potential is needed to stop the most energetic photoelectrons?

SOLUTION:

The energy of the photons is

${\displaystyle E=h\nu ={\frac {hc}{\lambda }}=}$(6.63 X ${\displaystyle 10^{-34}}$ J.s)(3 X ${\displaystyle 10^{8}}$ m/s)/2.9 x ${\displaystyle 10^{-7}}$ m) = 6.86 X ${\displaystyle 10^{-19}}$ J = (6.86 X ${\displaystyle 10^{-19}}$ J)/(1.60 X ${\displaystyle 10^{-19}}$ J/eV) = 4.28 eV

The maximum kinetic energy of the photoelectron is ${\displaystyle E-W=0.23eV}$, so the potential difference is 0.23 volts.