Question

Ejection of a photoelectron from a metal in the photoelectric effect experiment can be stopped by applying $0.5V$ when a radiation of $250nm$ is used. The work function of the metal is :

• A. $4eV$
• B. $5.5eV$
• C. $4.5eV$
• D. $5eV$

Answer 1

The correct option is C $4.5eV$

From Einstein's Photoelectric Equation,
$K.E=E-W_o$, Also $K.E=e{V}_o$
$e{V}_o=\frac{hc}{\lambda }-W_o$
where, $V_o=\text{Stopping potential}$
$h=\text{Planck's Constant}=6.626\times {10}^{-34}J.s$
$c=\text{Speed of light}=3\times {10}^{8}m/s$
$\lambda =\text{Wavelength of incident light}=250nm=2.5\times {10}^{-7}m$
We know that $1eV=1.6\times {10}^{-19}J$
And need to calculate $W_o$
Putting values in above equation,
We get,
$W_o=\frac{hc}{\lambda }-e{V}_o$
$\Rightarrow W_o=\frac{(6.62\times {10}^{-34})(3\times {10}^8)}{2.5\times {10}^{-7}}-(1.6\times {10}^{-19})\left(0.5\right)=7.14\times {10}^{-19}J$
$=4.5eV$
$\Rightarrow W_o=4.5eV$