The work function of caesium metal is $2.14 \;eV$. When light of frequency $ 6 \times 10^{14}Hz$ is incident on the metal surface , photoemmision of electron occurs. What is the stopping potential of the emitted photoelectrons ?

Question

$\begin {array} {1 1} (a)\;0.345eV & \quad (b)\;0.345V \\ (c)\;03.45V & \quad (d)\;0.03454V \end {array}$