Given: The threshold frequency is f0. For incident frequency 2f0, the maximum photoelectron velocity is v1. For incident frequency 5f0, the maximum photoelectron velocity is v2.
Find: The ratio v2v1.
Using Einstein’s photoelectric equation,
Kmax=hf−hf0
and the kinetic energy relation,
Kmax=21mv2
For f=2f0,
21mv12=h(2f0)−hf0=hf0
For f=5f0,
21mv22=h(5f0)−hf0=4hf0
Dividing the two equations,
21mv2221mv12=4hf0hf0
v22v12=41
Therefore,
v2v1=21
So the correct value is 21. However, the solution marks Option D, while the listed options show 21 as Option A. This is a source discrepancy.