If a radiation of wavelength 470nm falls on the surface of potassium metal, eletcrons are emitted with a maximum velocity of 6.4×104m s−1.
Stopping potential of the given circuit is:
A
1.21 V
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B
0.131 V
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C
1.16 V
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D
0.116 V
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Solution
The correct option is D 0.116 V Given: λ=470nm v=6.4×104m s−1
Stopping potential is the required potential to cause zero current
Therefore, K.E.=12mv2=12×9.1×10−31×(6.4×108)2
=1.86×10−20J
Again we know, KEmax=eVs
where, Vs is the stopping potential 1.86×10−20=1.6×10−19×Vs ⇒Vs=1.86×10−201.6×10−19=0.116V