Question

A mercury arc lamp provides $0.1\text{W}$ of ultra-violet radiation at a wavelength of $\lambda =2537\stackrel{\circ }{A}$ only. The photo tube (cathode of photo electric device) consists of potassium and has an effective area of $4c{m}^2$. The cathode is located at a distance of $1\text{m}$ from the radiation source. The work function for potassium is ${\varphi }_0=2.2eV$.
What is the cut off potential $V_0$ ?

• A. $26.9\text{V}$
• B. $2.69\text{V}$
• C. $1.35\text{V}$
• D. $5.33\text{V}$

Answer 1

The correct option is B $2.69\text{V}$

Cut-off potential $V_0$ found by photoelectric equation i.e.
$E_p-\varphi =e{V}_0$
We have $E_p$ as
$E_p=\frac{hc}{\lambda }=\frac{12.43\times {10}^{-7}}{2537\times {10}^{-10}}\approx 4.9\text{eV}$
$\varphi =2.2\text{eV}$
Putting these values in photoelectric equation we get
$2.7\text{eV}=\text{e}{V}_0$
$\Rightarrow V_0=2.7\text{V}$