Calculate the maximum kinetic energy of photoelectrons emitted when a light of frequency 2×1016Hz is irradiated on a metal surface with threshold frequency v0 equal to 8.68×1015Hz
A
7.50×10−8J
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B
8.38×10−18J
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C
7.50×10−18J
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D
8.38×10−8J
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Solution
The correct option is C7.50×10−18J hν=hν0+KE Threshold frequency (ν0)=8.68×1015Hz/s Frequency of light ν)=2×1016Hz K.E=h(ν−ν0) =6.626×10−34(2×1016−8.68×1015) K.E=7.5×10−18J Maximum kinetic energy of photoelectrons = 7.5×10−18J